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href="/search/?searchtype=author&amp;query=Gayoso%2C+C+A&amp;start=50" class="pagination-link " aria-label="Page 2" aria-current="page">2 </a> </li> </ul> </nav> <ol class="breathe-horizontal" start="1"> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2410.12099">arXiv:2410.12099</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2410.12099">pdf</a>, <a href="https://arxiv.org/ps/2410.12099">ps</a>, <a href="https://arxiv.org/format/2410.12099">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> </div> <p class="title is-5 mathjax"> The EMC Effect of Tritium and Helium-3 from the JLab MARATHON Experiment </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Abrams%2C+D">D. Abrams</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Albataineh%2C+H">H. Albataineh</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aljawrneh%2C+B+S">B. S. Aljawrneh</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Alsalmi%2C+S">S. Alsalmi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Androic%2C+D">D. Androic</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aniol%2C+K">K. Aniol</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Armstrong%2C+W">W. Armstrong</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Arrington%2C+J">J. Arrington</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Atac%2C+H">H. Atac</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Averett%2C+T">T. Averett</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bai%2C+X">X. Bai</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bane%2C+J">J. Bane</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barcus%2C+S">S. Barcus</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Beck%2C+A">A. Beck</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bellini%2C+V">V. Bellini</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhatt%2C+H">H. Bhatt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhetuwal%2C+D">D. Bhetuwal</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Biswas%2C+D">D. Biswas</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Blyth%2C+D">D. Blyth</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Boeglin%2C+W">W. Boeglin</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bulumulla%2C+D">D. Bulumulla</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Butler%2C+J">J. Butler</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Camsonne%2C+A">A. Camsonne</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Carmignotto%2C+M">M. Carmignotto</a> , et al. (109 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2410.12099v1-abstract-short" style="display: inline;"> Measurements of the EMC effect in the tritium and helium-3 mirror nuclei are reported. The data were obtained by the MARATHON Jefferson Lab experiment, which performed deep inelastic electron scattering from deuterium and the three-body nuclei, using a cryogenic gas target system and the High Resolution Spectrometers of the Hall A Facility of the Lab. The data cover the Bjorken $x$ range from 0.20&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2410.12099v1-abstract-full').style.display = 'inline'; document.getElementById('2410.12099v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2410.12099v1-abstract-full" style="display: none;"> Measurements of the EMC effect in the tritium and helium-3 mirror nuclei are reported. The data were obtained by the MARATHON Jefferson Lab experiment, which performed deep inelastic electron scattering from deuterium and the three-body nuclei, using a cryogenic gas target system and the High Resolution Spectrometers of the Hall A Facility of the Lab. The data cover the Bjorken $x$ range from 0.20 to 0.83, corresponding to a squared four-momentum transfer $Q^2$ range from 2.7 to $11.9\gevsq$, and to an invariant mass $W$ of the final hadronic state greater than 1.84 GeV/${\it c}^2$. The tritium EMC effect measurement is the first of its kind. The MARATHON experimental results are compared to results from previous measurements by DESY-HERMES and JLab-Hall C experiments, as well as with few-body theoretical predictions. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2410.12099v1-abstract-full').style.display = 'none'; document.getElementById('2410.12099v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 15 October, 2024; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> October 2024. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">arXiv admin note: text overlap with arXiv:2104.05850</span> </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2409.18463">arXiv:2409.18463</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2409.18463">pdf</a>, <a href="https://arxiv.org/format/2409.18463">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> </div> <p class="title is-5 mathjax"> First Measurement of Near- and Sub-Threshold $J/蠄$ Photoproduction off Nuclei </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Pybus%2C+J+R">J. R. Pybus</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ehinger%2C+L">L. Ehinger</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kolar%2C+T">T. Kolar</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Devkota%2C+B">B. Devkota</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Sharp%2C+P">P. Sharp</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Yu%2C+B">B. Yu</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dalton%2C+M+M">M. M. Dalton</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dutta%2C+D">D. Dutta</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gao%2C+H">H. Gao</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hen%2C+O">O. Hen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Piasetzky%2C+E">E. Piasetzky</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Santiesteban%2C+S+N">S. N. Santiesteban</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Schmidt%2C+A">A. Schmidt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Somov%2C+A">A. Somov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Szumila-Vance%2C+H">H. Szumila-Vance</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Adhikari%2C+S">S. Adhikari</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Asaturyan%2C+A">A. Asaturyan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Austregesilo%2C+A">A. Austregesilo</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barlow%2C+J">J. Barlow</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Berdnikov%2C+V+V">V. V. Berdnikov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhatt%2C+H+D">H. D. Bhatt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhetuwal%2C+D">Deepak Bhetuwal</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Black%2C+T">T. Black</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Briscoe%2C+W+J">W. J. Briscoe</a> , et al. (43 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2409.18463v2-abstract-short" style="display: inline;"> We report on the first measurement of $J/蠄$ photoproduction from nuclei in the photon energy range of $7$ to $10.8$ GeV, extending above and below the photoproduction threshold in the free proton of $\sim8.2$ GeV. The experiment used a tagged photon beam incident on deuterium, helium, and carbon, and the GlueX detector at Jefferson Lab to measure the semi-inclusive $A(纬,e^+e^-p)$ reaction with a d&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2409.18463v2-abstract-full').style.display = 'inline'; document.getElementById('2409.18463v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2409.18463v2-abstract-full" style="display: none;"> We report on the first measurement of $J/蠄$ photoproduction from nuclei in the photon energy range of $7$ to $10.8$ GeV, extending above and below the photoproduction threshold in the free proton of $\sim8.2$ GeV. The experiment used a tagged photon beam incident on deuterium, helium, and carbon, and the GlueX detector at Jefferson Lab to measure the semi-inclusive $A(纬,e^+e^-p)$ reaction with a dilepton invariant mass $M(e^+e^-)\sim m_{J/蠄}=3.1$ GeV. The incoherent $J/蠄$ photoproduction cross sections in the measured nuclei are extracted as a function of the incident photon energy, momentum transfer, and proton reconstructed missing light-cone momentum fraction. Comparisons with theoretical predictions assuming a dipole form factor allow extracting a gluonic radius for bound protons of $\sqrt{\langle r^2\rangle}=0.85\pm0.14$ fm. The data also suggest an excess of the measured cross section for sub-threshold production and for interactions with high missing light-cone momentum fraction protons. The measured enhancement can be explained by modified gluon structure for high-virtuality bound-protons. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2409.18463v2-abstract-full').style.display = 'none'; document.getElementById('2409.18463v2-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 23 October, 2024; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 27 September, 2024; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> September 2024. </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2409.16370">arXiv:2409.16370</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2409.16370">pdf</a>, <a href="https://arxiv.org/format/2409.16370">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> </div> <p class="title is-5 mathjax"> Quasielastic $\overrightarrow{^{3}\mathrm{He}}(\overrightarrow{e},{e&#39;})$ Asymmetry in the Threshold Region </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Nycz%2C+M">M. Nycz</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Armstrong%2C+W">W. Armstrong</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Averett%2C+T">T. Averett</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bai%2C+X">X. Bai</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bane%2C+J">J. Bane</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barcus%2C+S">S. Barcus</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Benesch%2C+J">J. Benesch</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhatt%2C+H">H. Bhatt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhetuwal%2C+D">D. Bhetuwal</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Biswas%2C+D">D. Biswas</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Camsonne%2C+A">A. Camsonne</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Cates%2C+G">G. Cates</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chen%2C+J">J-P. Chen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chen%2C+J">J. Chen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chen%2C+M">M. Chen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Cotton%2C+C">C. Cotton</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dalton%2C+M">M-M. Dalton</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Deltuva%2C+A">A. Deltuva</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Deur%2C+A">A. Deur</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dhital%2C+B">B. Dhital</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Duran%2C+B">B. Duran</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dusa%2C+S+C">S. C. Dusa</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Fernando%2C+I">I. Fernando</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Fuchey%2C+E">E. Fuchey</a> , et al. (75 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2409.16370v1-abstract-short" style="display: inline;"> A measurement of the double-spin asymmetry from electron-$^{3}$He scattering in the threshold region of two- and three-body breakup of $^{3}$He was performed at Jefferson Lab, for Q$^{2}$ values of 0.1 and 0.2 (GeV/$c$)$^{2}$. The results of this measurement serve as a stringent test of our understanding of few-body systems. When compared with calculations from plane wave impulse approximation and&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2409.16370v1-abstract-full').style.display = 'inline'; document.getElementById('2409.16370v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2409.16370v1-abstract-full" style="display: none;"> A measurement of the double-spin asymmetry from electron-$^{3}$He scattering in the threshold region of two- and three-body breakup of $^{3}$He was performed at Jefferson Lab, for Q$^{2}$ values of 0.1 and 0.2 (GeV/$c$)$^{2}$. The results of this measurement serve as a stringent test of our understanding of few-body systems. When compared with calculations from plane wave impulse approximation and Faddeev theory, we found that the Faddeev calculations, which use modern nuclear potentials and prescriptions for meson-exchange currents, demonstrate an overall good agreement with data. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2409.16370v1-abstract-full').style.display = 'none'; document.getElementById('2409.16370v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 24 September, 2024; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> September 2024. </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2409.03750">arXiv:2409.03750</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2409.03750">pdf</a>, <a href="https://arxiv.org/format/2409.03750">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Theory">nucl-th</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1140/epja/s10050-024-01391-7">10.1140/epja/s10050-024-01391-7 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Pion electroproduction measurements in the nucleon resonance region </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Li%2C+R">R. Li</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Sparveris%2C+N">N. Sparveris</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Atac%2C+H">H. Atac</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Jones%2C+M+K">M. K. Jones</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Paolone%2C+M">M. Paolone</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Akbar%2C+Z">Z. Akbar</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ali%2C+M">M. Ali</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Berdnikov%2C+V">V. Berdnikov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Biswas%2C+D">D. Biswas</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Boer%2C+M">M. Boer</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Camsonne%2C+A">A. Camsonne</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chen%2C+J+-">J. -P. Chen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Diefenthaler%2C+M">M. Diefenthaler</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Duran%2C+B">B. Duran</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dutta%2C+D">D. Dutta</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gaskell%2C+D">D. Gaskell</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hansen%2C+O">O. Hansen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hauenstein%2C+F">F. Hauenstein</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Heinrich%2C+N">N. Heinrich</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Henry%2C+W">W. Henry</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Horn%2C+T">T. Horn</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Huber%2C+G+M">G. M. Huber</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Jia%2C+S">S. Jia</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Joosten%2C+S">S. Joosten</a> , et al. (24 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2409.03750v1-abstract-short" style="display: inline;"> We report new pion electroproduction measurements in the $螖(1232)$ resonance, utilizing the SHMS - HMS magnetic spectrometers of Hall C at Jefferson Lab. The data focus on a region that exhibits a strong and rapidly changing interplay of the mesonic cloud and quark-gluon dynamics in the nucleon. The results are in reasonable agreement with models that employ pion cloud effects and chiral effective&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2409.03750v1-abstract-full').style.display = 'inline'; document.getElementById('2409.03750v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2409.03750v1-abstract-full" style="display: none;"> We report new pion electroproduction measurements in the $螖(1232)$ resonance, utilizing the SHMS - HMS magnetic spectrometers of Hall C at Jefferson Lab. The data focus on a region that exhibits a strong and rapidly changing interplay of the mesonic cloud and quark-gluon dynamics in the nucleon. The results are in reasonable agreement with models that employ pion cloud effects and chiral effective field theory calculations, but at the same time they suggest that an improvement is required to the theoretical calculations and provide valuable input that will allow their refinements. The data illustrate the potential of the magnetic spectrometers setup in Hall C towards the study the $螖(1232)$ resonance. These first reported results will be followed by a series of measurements in Hall C, that will expand the studies of the $螖(1232)$ resonance offering a high precision insight within a wide kinematic range from low to high momentum transfers. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2409.03750v1-abstract-full').style.display = 'none'; document.getElementById('2409.03750v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 5 September, 2024; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> September 2024. </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2408.16640">arXiv:2408.16640</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2408.16640">pdf</a>, <a href="https://arxiv.org/format/2408.16640">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="High Energy Physics - Phenomenology">hep-ph</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Theory">nucl-th</span> </div> </div> <p class="title is-5 mathjax"> Flavor Dependence of Charged Pion Fragmentation Functions </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Bhatt%2C+H">H. Bhatt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bosted%2C+P">P. Bosted</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Jia%2C+S">S. Jia</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Armstrong%2C+W">W. Armstrong</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dutta%2C+D">D. Dutta</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ent%2C+R">R. Ent</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gaskell%2C+D">D. Gaskell</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kinney%2C+E">E. Kinney</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Mkrtchyan%2C+H">H. Mkrtchyan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ali%2C+S">S. Ali</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ambrose%2C+R">R. Ambrose</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Androic%2C+D">D. Androic</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bandari%2C+A">A. Bandari</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Berdnikov%2C+V">V. Berdnikov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhetuwal%2C+D">D. Bhetuwal</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Biswas%2C+D">D. Biswas</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Boer%2C+M">M. Boer</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Brash%2C+E">E. Brash</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Camsonne%2C+A">A. Camsonne</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chen%2C+J+P">J. P. Chen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chen%2C+J">J. Chen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chen%2C+M">M. Chen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Christy%2C+E+M">E. M. Christy</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Covrig%2C+S">S. Covrig</a> , et al. (45 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2408.16640v2-abstract-short" style="display: inline;"> We have measured the flavor dependence of multiplicities for pi^+ and pi^- production in semi-inclusive deep-inelastic scattering (SIDIS) on proton and deuteron targets to explore a possible charge symmetry violation in fragmentation functions. The experiment used an electron beam with energies of 10.2 and 10.6 GeV at Jefferson Lab and the Hall-C spectrometers. The electron kinematics spanned the&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2408.16640v2-abstract-full').style.display = 'inline'; document.getElementById('2408.16640v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2408.16640v2-abstract-full" style="display: none;"> We have measured the flavor dependence of multiplicities for pi^+ and pi^- production in semi-inclusive deep-inelastic scattering (SIDIS) on proton and deuteron targets to explore a possible charge symmetry violation in fragmentation functions. The experiment used an electron beam with energies of 10.2 and 10.6 GeV at Jefferson Lab and the Hall-C spectrometers. The electron kinematics spanned the range 0.3&lt;x&lt;0.6, 2&lt;Q^2&lt;5.5 GeV^2, and 4&lt;W^2&lt;11 GeV^2. The pion fractional momentum range was 0.3&lt; z &lt;0.7, and the transverse momentum range was 0&lt;p_T&lt;0.25 GeV/c. Assuming factorization at low p_T and allowing for isospin breaking, we find that the results can be described by two &#34;favored&#34; and two &#34;un-favored&#34; effective low $p_T$ fragmentation functions that are flavor-dependent. However, they converge to a common flavor-independent value at the lowest x or highest W of this experiment. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2408.16640v2-abstract-full').style.display = 'none'; document.getElementById('2408.16640v2-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 5 September, 2024; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 29 August, 2024; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> August 2024. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">6 pages, 3 figures with 11 pages of supplementary material which has 9 figures</span> </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2404.16235">arXiv:2404.16235</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2404.16235">pdf</a>, <a href="https://arxiv.org/format/2404.16235">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Theory">nucl-th</span> </div> </div> <p class="title is-5 mathjax"> Inclusive studies of two- and three-nucleon short-range correlations in $^3$H and $^3$He </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Li%2C+S">S. Li</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Santiesteban%2C+S+N">S. N. Santiesteban</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Arrington%2C+J">J. Arrington</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Cruz-Torres%2C+R">R. Cruz-Torres</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kurbany%2C+L">L. Kurbany</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Abrams%2C+D">D. Abrams</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Alsalmi%2C+S">S. Alsalmi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Androic%2C+D">D. Androic</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aniol%2C+K">K. Aniol</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Averett%2C+T">T. Averett</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bane%2C+J">J. Bane</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barcus%2C+S">S. Barcus</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barrow%2C+J">J. Barrow</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Beck%2C+A">A. Beck</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bellini%2C+V">V. Bellini</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhatt%2C+H">H. Bhatt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhetuwal%2C+D">D. Bhetuwal</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Biswas%2C+D">D. Biswas</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bulumulla%2C+D">D. Bulumulla</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Camsonne%2C+A">A. Camsonne</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Castellanos%2C+J">J. Castellanos</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chen%2C+J">J. Chen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chen%2C+J">J-P. Chen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chrisman%2C+D">D. Chrisman</a> , et al. (91 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2404.16235v1-abstract-short" style="display: inline;"> Inclusive electron scattering at carefully chosen kinematics can isolate scattering from short-range correlations (SRCs), produced through hard, short-distance interactions of nucleons in the nucleus. Because the two-nucleon (2N) SRCs arise from the same N-N interaction in all nuclei, the cross section in the SRC-dominated regime is identical up to an overall scaling factor, and the A/2H cross sec&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2404.16235v1-abstract-full').style.display = 'inline'; document.getElementById('2404.16235v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2404.16235v1-abstract-full" style="display: none;"> Inclusive electron scattering at carefully chosen kinematics can isolate scattering from short-range correlations (SRCs), produced through hard, short-distance interactions of nucleons in the nucleus. Because the two-nucleon (2N) SRCs arise from the same N-N interaction in all nuclei, the cross section in the SRC-dominated regime is identical up to an overall scaling factor, and the A/2H cross section ratio is constant in this region. This scaling behavior has been used to identify SRC dominance and to map out the contribution of SRCs for a wide range of nuclei. We examine this scaling behavior at lower momentum transfers using new data on $^2$H, $^3$H, and $^3$He which show that the scaling region is larger than in heavy nuclei. Based on the improved scaling, especially for $^3$H/$^3$He, we examine the ratios at kinematics where three-nucleon SRCs may play an important role. The data for the largest initial nucleon momenta are consistent with isolation of scattering from 3N-SRCs, and suggest that the very-highest momentum nucleons in $^3$He have a nearly isospin-independent momentum configuration, or a small enhancement of the proton distribution. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2404.16235v1-abstract-full').style.display = 'none'; document.getElementById('2404.16235v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 24 April, 2024; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> April 2024. </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2403.01173">arXiv:2403.01173</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2403.01173">pdf</a>, <a href="https://arxiv.org/format/2403.01173">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> </div> <p class="title is-5 mathjax"> Electroproduction of the Lambda/Sigma^0 hyperons at Q^2~0.5 (GeV/c)^2 at forward angles </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Okuyama%2C+K">K. Okuyama</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Itabashi%2C+K">K. Itabashi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Nagao%2C+S">S. Nagao</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Nakamura%2C+S+N">S. N. Nakamura</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Suzuki%2C+K+N">K. N. Suzuki</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gogami%2C+T">T. Gogami</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Pandey%2C+B">B. Pandey</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Tang%2C+L">L. Tang</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Byd%C5%BEovsk%C3%BD%2C+P">P. Byd啪ovsk媒</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Skoupil%2C+D">D. Skoupil</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Mart%2C+T">T. Mart</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Abrams%2C+D">D. Abrams</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Akiyama%2C+T">T. Akiyama</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Androic%2C+D">D. Androic</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aniol%2C+K">K. Aniol</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bane%2C+J">J. Bane</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barcus%2C+S">S. Barcus</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barrow%2C+J">J. Barrow</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bellini%2C+V">V. Bellini</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhatt%2C+H">H. Bhatt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhetuwal%2C+D">D. Bhetuwal</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Biswas%2C+D">D. Biswas</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Camsonne%2C+A">A. Camsonne</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Castellanos%2C+J">J. Castellanos</a> , et al. (61 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2403.01173v5-abstract-short" style="display: inline;"> In 2018, the E12-17-003 experiment was conducted at the Thomas Jefferson National Accelerator Facility (JLab) to explore the possible existence of an nnLambda state in the reconstructed missing mass distribution from a tritium gas target [K. N. Suzuki et al., Prog. Theor. Exp. Phys. 2022, 013D01 (2022), B. Pandey et al., Phys. Rev. C 105, L051001 (2022)]. As part of this investigation, data was al&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2403.01173v5-abstract-full').style.display = 'inline'; document.getElementById('2403.01173v5-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2403.01173v5-abstract-full" style="display: none;"> In 2018, the E12-17-003 experiment was conducted at the Thomas Jefferson National Accelerator Facility (JLab) to explore the possible existence of an nnLambda state in the reconstructed missing mass distribution from a tritium gas target [K. N. Suzuki et al., Prog. Theor. Exp. Phys. 2022, 013D01 (2022), B. Pandey et al., Phys. Rev. C 105, L051001 (2022)]. As part of this investigation, data was also collected using a gaseous hydrogen target, not only for a precise absolute mass scale calibration but also for the study of Lambda/Sigma^0 electroproduction. This dataset was acquired at Q^2~0.5 (GeV/c)^2, W=2.14 GeV, and theta_{gamma K}^{c.m.}~8 deg. It covers forward angles where photoproduction data is scarce and a low-Q^2 region that is of interest for hypernuclear experiments. On the other hand, this kinematic region is at a slightly higher Q^2 than previous hypernuclear experiments, thus providing crucial information for understanding the Q^2 dependence of the differential cross sections for Lambda/Sigma^0 hyperon electroproduction. This paper reports on the Q^2 dependence of the differential cross section for the e + p -&gt; e&#39; + K^+ + Lambda/Sigma^0 reaction in the 0.2-0.8 (GeV/c)^2, and provides comparisons with the currently available theoretical models. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2403.01173v5-abstract-full').style.display = 'none'; document.getElementById('2403.01173v5-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 4 August, 2024; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 2 March, 2024; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> March 2024. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">11 pages, 15 figures</span> </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2402.01904">arXiv:2402.01904</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2402.01904">pdf</a>, <a href="https://arxiv.org/format/2402.01904">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Instrumentation and Detectors">physics.ins-det</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="High Energy Physics - Experiment">hep-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1016/j.nima.2024.169190">10.1016/j.nima.2024.169190 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Design, Construction, and Performance of the GEM based Radial Time Projection Chamber for the BONuS12 Experiment with CLAS12 </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Albayrak%2C+I">I. Albayrak</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aune%2C+S">S. Aune</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Baron%2C+P">P. Baron</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=B%C3%BCltmann%2C+S">S. B眉ltmann</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Charles%2C+G">G. Charles</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Christy%2C+M+E">M. E. Christy</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dodge%2C+G">G. Dodge</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dzbenski%2C+N">N. Dzbenski</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dupr%C3%A9%2C+R">R. Dupr茅</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Griffioen%2C+K">K. Griffioen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hattawy%2C+M">M. Hattawy</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hung%2C+Y+C">Y. C. Hung</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kalantarians%2C+N">N. Kalantarians</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kuhn%2C+S">S. Kuhn</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Mandjavidze%2C+I">I. Mandjavidze</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Nadeeshani%2C+A">A. Nadeeshani</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ouillon%2C+M">M. Ouillon</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Pandey%2C+P">P. Pandey</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Payette%2C+D">D. Payette</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Pokhrel%2C+M">M. Pokhrel</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Poudel%2C+J">J. Poudel</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Tadepalli%2C+A+S">A. S. Tadepalli</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Vandenbroucke%2C+M">M. Vandenbroucke</a> </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2402.01904v1-abstract-short" style="display: inline;"> A new radial time projection chamber based on Gas Electron Multiplier amplification layers was developed for the BONuS12 experiment in Hall B at Jefferson Lab. This device represents a significant evolutionary development over similar devices constructed for previous experiments, including cylindrical amplification layers constructed from single continuous GEM foils with less than 1\% dead area. P&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2402.01904v1-abstract-full').style.display = 'inline'; document.getElementById('2402.01904v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2402.01904v1-abstract-full" style="display: none;"> A new radial time projection chamber based on Gas Electron Multiplier amplification layers was developed for the BONuS12 experiment in Hall B at Jefferson Lab. This device represents a significant evolutionary development over similar devices constructed for previous experiments, including cylindrical amplification layers constructed from single continuous GEM foils with less than 1\% dead area. Particular attention had been paid to producing excellent geometric uniformity of all electrodes, including the very thin metalized polyester film of the cylindrical cathode. This manuscript describes the design, construction, and performance of this new detector. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2402.01904v1-abstract-full').style.display = 'none'; document.getElementById('2402.01904v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 2 February, 2024; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> February 2024. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Report number:</span> JLAB-PHY-24-4000 </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Nucl.Instrum.Meth.A 1062 (2024) 169190 </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2308.07197">arXiv:2308.07197</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2308.07197">pdf</a>, <a href="https://arxiv.org/format/2308.07197">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> </div> <p class="title is-5 mathjax"> Measurement of the Generalized Polarizabilities of the Proton in Virtual Compton Scattering </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Atac%2C+H">H. Atac</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Camsonne%2C+A">A. Camsonne</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Jones%2C+M+K">M. K. Jones</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Paolone%2C+M">M. Paolone</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Sparveris%2C+N">N. Sparveris</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Sayadat%2C+N">N. Sayadat</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Shesthra%2C+S">S. Shesthra</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Li%2C+R">R. Li</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Webster%2C+S">S. Webster</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chen%2C+J">J-P. Chen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Covrig-Dusa%2C+S">S. Covrig-Dusa</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Deur%2C+A">A. Deur</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=McCaughan%2C+M+D">M. D. McCaughan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Tadepalli%2C+A">A. Tadepalli</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Armstrong%2C+W">W. Armstrong</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Joosten%2C+S">S. Joosten</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Meziani%2C+Z+E">Z. E. Meziani</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Peng%2C+C">C. Peng</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ali%2C+M">M. Ali</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Katramatou%2C+A+T">A. T. Katramatou</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Petratos%2C+G+G">G. G. Petratos</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Brash%2C+E">E. Brash</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bernauer%2C+J">J. Bernauer</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Cline%2C+E">E. Cline</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Li%2C+W">W. Li</a> , et al. (15 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2308.07197v1-abstract-short" style="display: inline;"> We propose to conduct a measurement of the Virtual Compton Scattering reaction in Hall C that will allow the precise extraction of the two scalar Generalized Polarizabilities (GPs) of the proton in the region of $Q^2=0.05~(GeV/c)^2$ to $Q^2=0.50~(GeV/c)^2$. The Generalized Polarizabilities are fundamental properties of the proton, that characterize the system&#39;s response to an external electromagne&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2308.07197v1-abstract-full').style.display = 'inline'; document.getElementById('2308.07197v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2308.07197v1-abstract-full" style="display: none;"> We propose to conduct a measurement of the Virtual Compton Scattering reaction in Hall C that will allow the precise extraction of the two scalar Generalized Polarizabilities (GPs) of the proton in the region of $Q^2=0.05~(GeV/c)^2$ to $Q^2=0.50~(GeV/c)^2$. The Generalized Polarizabilities are fundamental properties of the proton, that characterize the system&#39;s response to an external electromagnetic (EM) field. They describe how easily the charge and magnetization distributions inside the system are distorted by the EM field, mapping out the resulting deformation of the densities in the proton. As such, they reveal unique information regarding the underlying system dynamics and provide a key for decoding the proton structure in terms of the theory of the strong interaction that binds its elementary quark and gluon constituents together. Recent measurements of the proton GPs have challenged the theoretical predictions, particularly in regard to the electric polarizability. The magnetic GP, on the other hand, can provide valuable insight to the competing paramagnetic and diamagnetic contributions in the proton, but it is poorly known within the region where the interplay of these processes is very dynamic and rapidly changing.The unique capabilities of Hall C, namely the high resolution of the spectrometers combined with the ability to place the spectrometers in small angles, will allow to pin down the dynamic signature of the GPs through high precision measurements combined with a fine mapping as a function of $Q^2$. The experimental setup utilizes standard Hall C equipment, as was previously employed in the VCS-I (E12-15-001) experiment, namely the HMS and SHMS spectrometers and a 10 cm liquid hydrogen target. A total of 59 days of unpolarized 75 $渭A$ electron beam with energy of 1100 MeV (6 days) and 2200 MeV (53 days) is requested for this experiment. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2308.07197v1-abstract-full').style.display = 'none'; document.getElementById('2308.07197v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 14 August, 2023; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> August 2023. </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2308.06339">arXiv:2308.06339</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2308.06339">pdf</a>, <a href="https://arxiv.org/format/2308.06339">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="High Energy Physics - Experiment">hep-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="High Energy Physics - Phenomenology">hep-ph</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1016/j.physletb.2024.138790">10.1016/j.physletb.2024.138790 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Search for axion-like particles through nuclear Primakoff production using the GlueX detector </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Pybus%2C+J+R">J. R. Pybus</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kolar%2C+T">T. Kolar</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Devkota%2C+B">B. Devkota</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Sharp%2C+P">P. Sharp</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Yu%2C+B">B. Yu</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hen%2C+O">O. Hen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Piasetzky%2C+E">E. Piasetzky</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Santiesteban%2C+S+N">S. N. Santiesteban</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Schmidt%2C+A">A. Schmidt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Somov%2C+A">A. Somov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Soreq%2C+Y">Y. Soreq</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Szumila-Vance%2C+H">H. Szumila-Vance</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Akondi%2C+C+S">C. S. Akondi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Berdnikov%2C+V+V">V. V. Berdnikov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhatt%2C+H">H. Bhatt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhetuwal%2C+D">D. Bhetuwal</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dalton%2C+M+M">M. M. Dalton</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Deur%2C+A">A. Deur</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dotel%2C+R">R. Dotel</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Fanelli%2C+C">C. Fanelli</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Guo%2C+J">J. Guo</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hague%2C+T+J">T. J. Hague</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Higinbotham%2C+D+W">D. W. Higinbotham</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hoffman%2C+N+D">N. D. Hoffman</a> , et al. (18 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2308.06339v1-abstract-short" style="display: inline;"> We report on the results of the first search for the production of axion-like particles (ALP) via Primakoff production on nuclear targets using the GlueX detector. This search uses an integrated luminosity of 100 pb$^{-1}\cdot$nucleon on a $^{12}$C target, and explores the mass region of 200 &lt; $m_a$ &lt; 450 MeV via the decay $X\rightarrow纬纬$. This mass range is between the $蟺^0$ and $畏$ masses, whic&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2308.06339v1-abstract-full').style.display = 'inline'; document.getElementById('2308.06339v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2308.06339v1-abstract-full" style="display: none;"> We report on the results of the first search for the production of axion-like particles (ALP) via Primakoff production on nuclear targets using the GlueX detector. This search uses an integrated luminosity of 100 pb$^{-1}\cdot$nucleon on a $^{12}$C target, and explores the mass region of 200 &lt; $m_a$ &lt; 450 MeV via the decay $X\rightarrow纬纬$. This mass range is between the $蟺^0$ and $畏$ masses, which enables the use of the measured $畏$ production rate to obtain absolute bounds on the ALP production with reduced sensitivity to experimental luminosity and detection efficiency. We find no evidence for an ALP, consistent with previous searches in the quoted mass range, and present limits on the coupling on the scale of $O$(1 TeV). We further find that the ALP production limit we obtain is hindered by the peaking structure of the non-target-related dominant background in GlueX, which we treat by using data on $^4$He to estimate and subtract these backgrounds. We comment on how this search can be improved in a future higher-statistics dedicated measurement. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2308.06339v1-abstract-full').style.display = 'none'; document.getElementById('2308.06339v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 11 August, 2023; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> August 2023. </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2307.07874">arXiv:2307.07874</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2307.07874">pdf</a>, <a href="https://arxiv.org/format/2307.07874">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> </div> <p class="title is-5 mathjax"> Beam Spin Asymmetry Measurements of Deeply Virtual $蟺^0$ Production with CLAS12 </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Kim%2C+A">A. Kim</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Diehl%2C+S">S. Diehl</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Joo%2C+K">K. Joo</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kubarovsky%2C+V">V. Kubarovsky</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Achenbach%2C+P">P. Achenbach</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Akbar%2C+Z">Z. Akbar</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Alvarado%2C+J+S">J. S. Alvarado</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Armstrong%2C+W+R">Whitney R. Armstrong</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Atac%2C+H">H. Atac</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Avakian%2C+H">H. Avakian</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barion%2C+L">L. Barion</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Battaglieri%2C+M">M. Battaglieri</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bedlinskiy%2C+I">I. Bedlinskiy</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Benkel%2C+B">B. Benkel</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bianconi%2C+A">A. Bianconi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Biselli%2C+A+S">A. S. Biselli</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bondi%2C+M">M. Bondi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Boss%C3%B9%2C+F">F. Boss霉</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Boiarinov%2C+S">S. Boiarinov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Brinkmann%2C+K+T">K. T. Brinkmann</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Briscoe%2C+W+J">W. J. Briscoe</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Brooks%2C+W+K">W. K. Brooks</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bueltmann%2C+S">S. Bueltmann</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Burkert%2C+V+D">V. D. Burkert</a> , et al. (132 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2307.07874v1-abstract-short" style="display: inline;"> The new experimental measurements of beam spin asymmetry were performed for the deeply virtual exclusive $蟺^0$ production in a wide kinematic region with the photon virtualities $Q^2$ up to 8 GeV$^2$ and the Bjorken scaling variable $x_B$ in the valence regime. The data were collected by the CEBAF Large Acceptance Spectrometer (CLAS12) at Jefferson Lab with longitudinally polarized 10.6 GeV electr&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2307.07874v1-abstract-full').style.display = 'inline'; document.getElementById('2307.07874v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2307.07874v1-abstract-full" style="display: none;"> The new experimental measurements of beam spin asymmetry were performed for the deeply virtual exclusive $蟺^0$ production in a wide kinematic region with the photon virtualities $Q^2$ up to 8 GeV$^2$ and the Bjorken scaling variable $x_B$ in the valence regime. The data were collected by the CEBAF Large Acceptance Spectrometer (CLAS12) at Jefferson Lab with longitudinally polarized 10.6 GeV electrons scattered on an unpolarized liquid-hydrogen target. Sizable asymmetry values indicate a substantial contribution from transverse virtual photon amplitudes to the polarized structure functions.The interpretation of these measurements in terms of the Generalized Parton Distributions (GPDs) demonstrates their sensitivity to the chiral-odd GPD $\bar E_T$, which contains information on quark transverse spin densities in unpolarized and polarized nucleons and provides access to the proton&#39;s transverse anomalous magnetic moment. Additionally, the data were compared to a theoretical model based on a Regge formalism that was extended to the high photon virtualities. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2307.07874v1-abstract-full').style.display = 'none'; document.getElementById('2307.07874v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 15 July, 2023; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> July 2023. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">arXiv admin note: substantial text overlap with arXiv:2210.14557</span> </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2306.09360">arXiv:2306.09360</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2306.09360">pdf</a>, <a href="https://arxiv.org/format/2306.09360">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="High Energy Physics - Experiment">hep-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="High Energy Physics - Phenomenology">hep-ph</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Theory">nucl-th</span> </div> </div> <p class="title is-5 mathjax"> Strong Interaction Physics at the Luminosity Frontier with 22 GeV Electrons at Jefferson Lab </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Accardi%2C+A">A. Accardi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Achenbach%2C+P">P. Achenbach</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Adhikari%2C+D">D. Adhikari</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Afanasev%2C+A">A. Afanasev</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Akondi%2C+C+S">C. S. Akondi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Akopov%2C+N">N. Akopov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Albaladejo%2C+M">M. Albaladejo</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Albataineh%2C+H">H. Albataineh</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Albrecht%2C+M">M. Albrecht</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Almeida-Zamora%2C+B">B. Almeida-Zamora</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Amaryan%2C+M">M. Amaryan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Androi%C4%87%2C+D">D. Androi膰</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Armstrong%2C+W">W. Armstrong</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Armstrong%2C+D+S">D. S. Armstrong</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Arratia%2C+M">M. Arratia</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Arrington%2C+J">J. Arrington</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Asaturyan%2C+A">A. Asaturyan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Austregesilo%2C+A">A. Austregesilo</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Avagyan%2C+H">H. Avagyan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Averett%2C+T">T. Averett</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bacchetta%2C+A">A. Bacchetta</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Balantekin%2C+A+B">A. B. Balantekin</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Baltzell%2C+N">N. Baltzell</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barion%2C+L">L. Barion</a> , et al. (419 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2306.09360v2-abstract-short" style="display: inline;"> This document presents the initial scientific case for upgrading the Continuous Electron Beam Accelerator Facility (CEBAF) at Jefferson Lab (JLab) to 22 GeV. It is the result of a community effort, incorporating insights from a series of workshops conducted between March 2022 and April 2023. With a track record of over 25 years in delivering the world&#39;s most intense and precise multi-GeV electron&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2306.09360v2-abstract-full').style.display = 'inline'; document.getElementById('2306.09360v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2306.09360v2-abstract-full" style="display: none;"> This document presents the initial scientific case for upgrading the Continuous Electron Beam Accelerator Facility (CEBAF) at Jefferson Lab (JLab) to 22 GeV. It is the result of a community effort, incorporating insights from a series of workshops conducted between March 2022 and April 2023. With a track record of over 25 years in delivering the world&#39;s most intense and precise multi-GeV electron beams, CEBAF&#39;s potential for a higher energy upgrade presents a unique opportunity for an innovative nuclear physics program, which seamlessly integrates a rich historical background with a promising future. The proposed physics program encompass a diverse range of investigations centered around the nonperturbative dynamics inherent in hadron structure and the exploration of strongly interacting systems. It builds upon the exceptional capabilities of CEBAF in high-luminosity operations, the availability of existing or planned Hall equipment, and recent advancements in accelerator technology. The proposed program cover various scientific topics, including Hadron Spectroscopy, Partonic Structure and Spin, Hadronization and Transverse Momentum, Spatial Structure, Mechanical Properties, Form Factors and Emergent Hadron Mass, Hadron-Quark Transition, and Nuclear Dynamics at Extreme Conditions, as well as QCD Confinement and Fundamental Symmetries. Each topic highlights the key measurements achievable at a 22 GeV CEBAF accelerator. Furthermore, this document outlines the significant physics outcomes and unique aspects of these programs that distinguish them from other existing or planned facilities. In summary, this document provides an exciting rationale for the energy upgrade of CEBAF to 22 GeV, outlining the transformative scientific potential that lies within reach, and the remarkable opportunities it offers for advancing our understanding of hadron physics and related fundamental phenomena. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2306.09360v2-abstract-full').style.display = 'none'; document.getElementById('2306.09360v2-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 24 August, 2023; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 13 June, 2023; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> June 2023. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">Updates to the list of authors; Preprint number changed from theory to experiment; Updates to sections 4 and 6, including additional figures</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Report number:</span> JLAB-PHY-23-3840 </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2304.13770">arXiv:2304.13770</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2304.13770">pdf</a>, <a href="https://arxiv.org/ps/2304.13770">ps</a>, <a href="https://arxiv.org/format/2304.13770">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> </div> <p class="title is-5 mathjax"> A novel measurement of the neutron magnetic form factor from A=3 mirror nuclei </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Santiesteban%2C+S+N">S. N. Santiesteban</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Li%2C+S">S. Li</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Abrams%2C+D">D. Abrams</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Alsalmi%2C+S">S. Alsalmi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Androic%2C+D">D. Androic</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aniol%2C+K">K. Aniol</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Arrington%2C+J">J. Arrington</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Averett%2C+T">T. Averett</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bane%2C+J">J. Bane</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barcus%2C+S">S. Barcus</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barrow%2C+J">J. Barrow</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Beck%2C+A">A. Beck</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bellini%2C+V">V. Bellini</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhatt%2C+H">H. Bhatt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhetuwal%2C+D">D. Bhetuwal</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Biswas%2C+D">D. Biswas</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Camsonne%2C+A">A. Camsonne</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Castellanos%2C+J">J. Castellanos</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chen%2C+J">J. Chen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chen%2C+J">J-P. Chen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chrisman%2C+D">D. Chrisman</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Christy%2C+M+E">M. E. Christy</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Clarke%2C+C">C. Clarke</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Covrig%2C+S">S. Covrig</a> , et al. (81 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2304.13770v2-abstract-short" style="display: inline;"> The electromagnetic form factors of the proton and neutron encode information on the spatial structure of their charge and magnetization distributions. While measurements of the proton are relatively straightforward, the lack of a free neutron target makes measurements of the neutron&#39;s electromagnetic structure more challenging and more sensitive to experimental or model-dependent uncertainties. V&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2304.13770v2-abstract-full').style.display = 'inline'; document.getElementById('2304.13770v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2304.13770v2-abstract-full" style="display: none;"> The electromagnetic form factors of the proton and neutron encode information on the spatial structure of their charge and magnetization distributions. While measurements of the proton are relatively straightforward, the lack of a free neutron target makes measurements of the neutron&#39;s electromagnetic structure more challenging and more sensitive to experimental or model-dependent uncertainties. Various experiments have attempted to extract the neutron form factors from scattering from the neutron in deuterium, with different techniques providing different, and sometimes large, systematic uncertainties. We present results from a novel measurement of the neutron magnetic form factor using quasielastic scattering from the mirror nuclei $^3$H and $^3$He, where the nuclear effects are larger than for deuterium but expected to largely cancel in the cross-section ratios. We extracted values of the neutron magnetic form factor for low-to-modest momentum transfer, $0.6&lt;Q^2&lt;2.9$ GeV$^2$, where existing measurements give inconsistent results. The precision and $Q^2$ range of this data allow for a better understanding of the current world&#39;s data, and suggest a path toward further improvement of our overall understanding of the neutron&#39;s magnetic form factor. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2304.13770v2-abstract-full').style.display = 'none'; document.getElementById('2304.13770v2-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 15 May, 2024; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 26 April, 2023; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> April 2023. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Phys. Rev. Lett. 132, 162501 (2024) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2303.02579">arXiv:2303.02579</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2303.02579">pdf</a>, <a href="https://arxiv.org/format/2303.02579">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="High Energy Physics - Phenomenology">hep-ph</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="High Energy Physics - Experiment">hep-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Theory">nucl-th</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1016/j.nuclphysa.2024.122874">10.1016/j.nuclphysa.2024.122874 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> The Present and Future of QCD </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Achenbach%2C+P">P. Achenbach</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Adhikari%2C+D">D. Adhikari</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Afanasev%2C+A">A. Afanasev</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Afzal%2C+F">F. Afzal</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aidala%2C+C+A">C. A. Aidala</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Al-bataineh%2C+A">A. Al-bataineh</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Almaalol%2C+D+K">D. K. Almaalol</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Amaryan%2C+M">M. Amaryan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Androi%C4%87%2C+D">D. Androi膰</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Armstrong%2C+W+R">W. R. Armstrong</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Arratia%2C+M">M. Arratia</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Arrington%2C+J">J. Arrington</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Asaturyan%2C+A">A. Asaturyan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aschenauer%2C+E+C">E. C. Aschenauer</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Atac%2C+H">H. Atac</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Avakian%2C+H">H. Avakian</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Averett%2C+T">T. Averett</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bai%2C+X">X. Bai</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barish%2C+K+N">K. N. Barish</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barnea%2C+N">N. Barnea</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Basar%2C+G">G. Basar</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Battaglieri%2C+M">M. Battaglieri</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Baty%2C+A+A">A. A. Baty</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bautista%2C+I">I. Bautista</a> , et al. (378 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2303.02579v1-abstract-short" style="display: inline;"> This White Paper presents the community inputs and scientific conclusions from the Hot and Cold QCD Town Meeting that took place September 23-25, 2022 at MIT, as part of the Nuclear Science Advisory Committee (NSAC) 2023 Long Range Planning process. A total of 424 physicists registered for the meeting. The meeting highlighted progress in Quantum Chromodynamics (QCD) nuclear physics since the 2015&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2303.02579v1-abstract-full').style.display = 'inline'; document.getElementById('2303.02579v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2303.02579v1-abstract-full" style="display: none;"> This White Paper presents the community inputs and scientific conclusions from the Hot and Cold QCD Town Meeting that took place September 23-25, 2022 at MIT, as part of the Nuclear Science Advisory Committee (NSAC) 2023 Long Range Planning process. A total of 424 physicists registered for the meeting. The meeting highlighted progress in Quantum Chromodynamics (QCD) nuclear physics since the 2015 LRP (LRP15) and identified key questions and plausible paths to obtaining answers to those questions, defining priorities for our research over the coming decade. In defining the priority of outstanding physics opportunities for the future, both prospects for the short (~ 5 years) and longer term (5-10 years and beyond) are identified together with the facilities, personnel and other resources needed to maximize the discovery potential and maintain United States leadership in QCD physics worldwide. This White Paper is organized as follows: In the Executive Summary, we detail the Recommendations and Initiatives that were presented and discussed at the Town Meeting, and their supporting rationales. Section 2 highlights major progress and accomplishments of the past seven years. It is followed, in Section 3, by an overview of the physics opportunities for the immediate future, and in relation with the next QCD frontier: the EIC. Section 4 provides an overview of the physics motivations and goals associated with the EIC. Section 5 is devoted to the workforce development and support of diversity, equity and inclusion. This is followed by a dedicated section on computing in Section 6. Section 7 describes the national need for nuclear data science and the relevance to QCD research. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2303.02579v1-abstract-full').style.display = 'none'; document.getElementById('2303.02579v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 4 March, 2023; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> March 2023. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">QCD Town Meeting White Paper, as submitted to 2023 NSAC LRP committee on Feb. 28, 2023</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Nucl.Phys.A 1047 (2024) 122874 </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2210.11461">arXiv:2210.11461</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2210.11461">pdf</a>, <a href="https://arxiv.org/format/2210.11461">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Theory">nucl-th</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1038/s41586-022-05248-1">10.1038/s41586-022-05248-1 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Measured proton electromagnetic structure deviates from theoretical predictions </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Li%2C+R">R. Li</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Sparveris%2C+N">N. Sparveris</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Atac%2C+H">H. Atac</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Jones%2C+M+K">M. K. Jones</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Paolone%2C+M">M. Paolone</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Akbar%2C+Z">Z. Akbar</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Berdnikov%2C+V">V. Berdnikov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Biswas%2C+D">D. Biswas</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Boer%2C+M">M. Boer</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Camsonne%2C+A">A. Camsonne</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chen%2C+J+-">J. -P. Chen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Diefenthaler%2C+M">M. Diefenthaler</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Duran%2C+B">B. Duran</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dutta%2C+D">D. Dutta</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gaskell%2C+D">D. Gaskell</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hansen%2C+O">O. Hansen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hauenstein%2C+F">F. Hauenstein</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Heinrich%2C+N">N. Heinrich</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Henry%2C+W">W. Henry</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Horn%2C+T">T. Horn</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Huber%2C+G+M">G. M. Huber</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Jia%2C+S">S. Jia</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Joosten%2C+S">S. Joosten</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Karki%2C+A">A. Karki</a> , et al. (22 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2210.11461v1-abstract-short" style="display: inline;"> The visible world is founded on the proton, the only composite building block of matter that is stable in nature. Consequently, understanding the formation of matter relies on explaining the dynamics and the properties of the proton&#39;s bound state.A fundamental property of the proton involves the response of the system to an external electromagnetic field. It is characterized by the electromagnetic&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2210.11461v1-abstract-full').style.display = 'inline'; document.getElementById('2210.11461v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2210.11461v1-abstract-full" style="display: none;"> The visible world is founded on the proton, the only composite building block of matter that is stable in nature. Consequently, understanding the formation of matter relies on explaining the dynamics and the properties of the proton&#39;s bound state.A fundamental property of the proton involves the response of the system to an external electromagnetic field. It is characterized by the electromagnetic polarizabilities that describe how easily the charge and magnetization distributions inside the system are distorted by the electromagnetic field. Moreover, the generalized polarizabilities map out the resulting deformation of the densities in a proton subject to an electromagnetic field. They disclose essential information about the underlying system dynamics and provide a key for decoding the proton structure in terms of the theory of the strong interaction that binds its elementary quark and gluon constituents. Of particular interest is a puzzle in the electric generalized polarizability of the proton that remains unresolved for two decades. Here we report measurements of the proton&#39;s electromagnetic generalized polarizabilities at low four-momentum transfer squared. We show evidence of an anomaly to the behaviour of the proton&#39;s electric generalized polarizability that contradicts the predictions of nuclear theory and derive its signature in the spatial distribution of the induced polarization in the proton. The reported measurements suggest the presence of a new, not-yet-understood dynamical mechanism in the proton and present notable challenges to the nuclear theory. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2210.11461v1-abstract-full').style.display = 'none'; document.getElementById('2210.11461v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 20 October, 2022; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> October 2022. </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2210.04189">arXiv:2210.04189</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2210.04189">pdf</a>, <a href="https://arxiv.org/format/2210.04189">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="High Energy Physics - Experiment">hep-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Theory">nucl-th</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1038/s41586-022-05007-2">10.1038/s41586-022-05007-2 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Revealing the short-range structure of the &#34;mirror nuclei&#34; $^3$H and $^3$He </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Li%2C+S">S. Li</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Cruz-Torres%2C+R">R. Cruz-Torres</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Santiesteban%2C+N">N. Santiesteban</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ye%2C+Z+H">Z. H. Ye</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Abrams%2C+D">D. Abrams</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Alsalmi%2C+S">S. Alsalmi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Androic%2C+D">D. Androic</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aniol%2C+K">K. Aniol</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Arrington%2C+J">J. Arrington</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Averett%2C+T">T. Averett</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bane%2C+J">J. Bane</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barcus%2C+S">S. Barcus</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barrow%2C+J">J. Barrow</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Beck%2C+A">A. Beck</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bellini%2C+V">V. Bellini</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhatt%2C+H">H. Bhatt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhetuwal%2C+D">D. Bhetuwal</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Biswas%2C+D">D. Biswas</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bulumulla%2C+D">D. Bulumulla</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Camsonne%2C+A">A. Camsonne</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Castellanos%2C+J">J. Castellanos</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chen%2C+J">J. Chen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chen%2C+J">J-P. Chen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chrisman%2C+D">D. Chrisman</a> , et al. (91 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2210.04189v1-abstract-short" style="display: inline;"> When protons and neutrons (nucleons) are bound into atomic nuclei, they are close enough together to feel significant attraction, or repulsion, from the strong, short-distance part of the nucleon-nucleon interaction. These strong interactions lead to hard collisions between nucleons, generating pairs of highly-energetic nucleons referred to as short-range correlations (SRCs). SRCs are an important&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2210.04189v1-abstract-full').style.display = 'inline'; document.getElementById('2210.04189v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2210.04189v1-abstract-full" style="display: none;"> When protons and neutrons (nucleons) are bound into atomic nuclei, they are close enough together to feel significant attraction, or repulsion, from the strong, short-distance part of the nucleon-nucleon interaction. These strong interactions lead to hard collisions between nucleons, generating pairs of highly-energetic nucleons referred to as short-range correlations (SRCs). SRCs are an important but relatively poorly understood part of nuclear structure and mapping out the strength and isospin structure (neutron-proton vs proton-proton pairs) of these virtual excitations is thus critical input for modeling a range of nuclear, particle, and astrophysics measurements. Hitherto measurements used two-nucleon knockout or ``triple-coincidence&#39;&#39; reactions to measure the relative contribution of np- and pp-SRCs by knocking out a proton from the SRC and detecting its partner nucleon (proton or neutron). These measurementsshow that SRCs are almost exclusively np pairs, but had limited statistics and required large model-dependent final-state interaction (FSI) corrections. We report on the first measurement using inclusive scattering from the mirror nuclei $^3$H and $^3$He to extract the np/pp ratio of SRCs in the A=3 system. We obtain a measure of the np/pp SRC ratio that is an order of magnitude more precise than previous experiments, and find a dramatic deviation from the near-total np dominance observed in heavy nuclei. This result implies an unexpected structure in the high-momentum wavefunction for $^3$He and $^3$H. Understanding these results will improve our understanding of the short-range part of the N-N interaction. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2210.04189v1-abstract-full').style.display = 'none'; document.getElementById('2210.04189v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 9 October, 2022; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> October 2022. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Nature 609, 41-45 (2022) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2208.14575">arXiv:2208.14575</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2208.14575">pdf</a>, <a href="https://arxiv.org/format/2208.14575">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Instrumentation and Detectors">physics.ins-det</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1016/j.nima.2023.168238">10.1016/j.nima.2023.168238 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Detector Requirements and Simulation Results for the EIC Exclusive, Diffractive and Tagging Physics Program using the ECCE Detector Concept </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Bylinkin%2C+A">A. Bylinkin</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dean%2C+C+T">C. T. Dean</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Fegan%2C+S">S. Fegan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gangadharan%2C+D">D. Gangadharan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gates%2C+K">K. Gates</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kay%2C+S+J+D">S. J. D. Kay</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Korover%2C+I">I. Korover</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Li%2C+W+B">W. B. Li</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Li%2C+X">X. Li</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Montgomery%2C+R">R. Montgomery</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Nguyen%2C+D">D. Nguyen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Penman%2C+G">G. Penman</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Pybus%2C+J+R">J. R. Pybus</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Santiesteban%2C+N">N. Santiesteban</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Trotta%2C+R">R. Trotta</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Usman%2C+A">A. Usman</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Baker%2C+M+D">M. D. Baker</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Frantz%2C+J">J. Frantz</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Glazier%2C+D+I">D. I. Glazier</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Higinbotham%2C+D+W">D. W. Higinbotham</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Horn%2C+T">T. Horn</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Huang%2C+J">J. Huang</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Huber%2C+G">G. Huber</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Reed%2C+R">R. Reed</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Roche%2C+J">J. Roche</a> , et al. (258 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2208.14575v2-abstract-short" style="display: inline;"> This article presents a collection of simulation studies using the ECCE detector concept in the context of the EIC&#39;s exclusive, diffractive, and tagging physics program, which aims to further explore the rich quark-gluon structure of nucleons and nuclei. To successfully execute the program, ECCE proposed to utilize the detecter system close to the beamline to ensure exclusivity and tag ion beam/fr&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2208.14575v2-abstract-full').style.display = 'inline'; document.getElementById('2208.14575v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2208.14575v2-abstract-full" style="display: none;"> This article presents a collection of simulation studies using the ECCE detector concept in the context of the EIC&#39;s exclusive, diffractive, and tagging physics program, which aims to further explore the rich quark-gluon structure of nucleons and nuclei. To successfully execute the program, ECCE proposed to utilize the detecter system close to the beamline to ensure exclusivity and tag ion beam/fragments for a particular reaction of interest. Preliminary studies confirmed the proposed technology and design satisfy the requirements. The projected physics impact results are based on the projected detector performance from the simulation at 10 or 100 fb^-1 of integrated luminosity. Additionally, a few insights on the potential 2nd Interaction Region can (IR) were also documented which could serve as a guidepost for the future development of a second EIC detector. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2208.14575v2-abstract-full').style.display = 'none'; document.getElementById('2208.14575v2-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 6 March, 2023; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 30 August, 2022; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> August 2022. </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2208.05086">arXiv:2208.05086</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2208.05086">pdf</a>, <a href="https://arxiv.org/format/2208.05086">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="High Energy Physics - Experiment">hep-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1103/PhysRevLett.130.022501">10.1103/PhysRevLett.130.022501 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> First observation of correlations between spin and transverse momenta in back-to-back dihadron production at CLAS12 </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Avakian%2C+H">H. Avakian</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hayward%2C+T+B">T. B. Hayward</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kotzinian%2C+A">A. Kotzinian</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Armstrong%2C+W+R">W. R. Armstrong</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Atac%2C+H">H. Atac</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Baashen%2C+L">L. Baashen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Baltzell%2C+N+A">N. A. Baltzell</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barion%2C+L">L. Barion</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bashkanov%2C+M">M. Bashkanov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Battaglieri%2C+M">M. Battaglieri</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bedlinskiy%2C+I">I. Bedlinskiy</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Benmokhtar%2C+F">F. Benmokhtar</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bianconi%2C+A">A. Bianconi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Biondo%2C+L">L. Biondo</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Biselli%2C+A+S">A. S. Biselli</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bondi%2C+M">M. Bondi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Boiarinov%2C+S">S. Boiarinov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Boss%C3%B9%2C+F">F. Boss霉</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Brinkman%2C+K+T">K. T. Brinkman</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Briscoe%2C+W+J">W. J. Briscoe</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Brooks%2C+W+K">W. K. Brooks</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bueltmann%2C+S">S. Bueltmann</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bulumulla%2C+D">D. Bulumulla</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Burkert%2C+V+D">V. D. Burkert</a> , et al. (131 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2208.05086v1-abstract-short" style="display: inline;"> We report the first measurements of deep inelastic scattering spin-dependent azimuthal asymmetries in back-to-back dihadron electroproduction, where two hadrons are produced in opposite hemispheres along the z-axis in the center-of-mass frame, with the first hadron produced in the current-fragmentation region and the second in the target-fragmentation region. The data were taken with longitudinall&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2208.05086v1-abstract-full').style.display = 'inline'; document.getElementById('2208.05086v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2208.05086v1-abstract-full" style="display: none;"> We report the first measurements of deep inelastic scattering spin-dependent azimuthal asymmetries in back-to-back dihadron electroproduction, where two hadrons are produced in opposite hemispheres along the z-axis in the center-of-mass frame, with the first hadron produced in the current-fragmentation region and the second in the target-fragmentation region. The data were taken with longitudinally polarized electron beams of 10.2 and 10.6 GeV incident on an unpolarized liquid-hydrogen target using the CLAS12 spectrometer at Jefferson Lab. Observed non-zero $\sin螖蠁$ modulations in $ep \rightarrow e&#39;p蟺^+X$ events, where $螖蠁$ is the difference of the azimuthal angles of the proton and pion in the virtual photon and target nucleon center-of-mass frame, indicate that correlations between the spin and transverse momenta of hadrons produced in the target- and current-fragmentation regions may be significant. The measured beam-spin asymmetries provide a first access in dihadron production to a previously unobserved leading-twist spin- and transverse-momentum-dependent fracture function. The fracture functions describe the hadronization of the target remnant after the hard scattering of a virtual photon off a quark in the target particle and provide a new avenue for studying nucleonic structure and hadronization. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2208.05086v1-abstract-full').style.display = 'none'; document.getElementById('2208.05086v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 9 August, 2022; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> August 2022. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">7 pages, 6 figures</span> </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2208.05054">arXiv:2208.05054</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2208.05054">pdf</a>, <a href="https://arxiv.org/format/2208.05054">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Instrumentation and Detectors">physics.ins-det</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="High Energy Physics - Experiment">hep-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1016/j.nima.2023.168032">10.1016/j.nima.2023.168032 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Alignment of the CLAS12 central hybrid tracker with a Kalman Filter </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Paul%2C+S+J">S. J. Paul</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Peck%2C+A">A. Peck</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Arratia%2C+M">M. Arratia</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gotra%2C+Y">Y. Gotra</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ziegler%2C+V">V. Ziegler</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=De+Vita%2C+R">R. De Vita</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bossu%2C+F">F. Bossu</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Defurne%2C+M">M. Defurne</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Atac%2C+H">H. Atac</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Baashen%2C+L">L. Baashen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Baltzell%2C+N+A">N. A. Baltzell</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barion%2C+L">L. Barion</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bashkanov%2C+M">M. Bashkanov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Battaglieri%2C+M">M. Battaglieri</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bedlinskiy%2C+I">I. Bedlinskiy</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Benkel%2C+B">B. Benkel</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Benmokhtar%2C+F">F. Benmokhtar</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bianconi%2C+A">A. Bianconi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Biondo%2C+L">L. Biondo</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Biselli%2C+A+S">A. S. Biselli</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bondi%2C+M">M. Bondi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Boiarinov%2C+S">S. Boiarinov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Brinkmann%2C+K+T">K. Th. Brinkmann</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Briscoe%2C+W+J">W. J. Briscoe</a> , et al. (109 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2208.05054v1-abstract-short" style="display: inline;"> Several factors can contribute to the difficulty of aligning the sensors of tracking detectors, including a large number of modules, multiple types of detector technologies, and non-linear strip patterns on the sensors. All three of these factors apply to the CLAS12 CVT, which is a hybrid detector consisting of planar silicon sensors with non-parallel strips, and cylindrical micromegas sensors wit&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2208.05054v1-abstract-full').style.display = 'inline'; document.getElementById('2208.05054v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2208.05054v1-abstract-full" style="display: none;"> Several factors can contribute to the difficulty of aligning the sensors of tracking detectors, including a large number of modules, multiple types of detector technologies, and non-linear strip patterns on the sensors. All three of these factors apply to the CLAS12 CVT, which is a hybrid detector consisting of planar silicon sensors with non-parallel strips, and cylindrical micromegas sensors with longitudinal and arc-shaped strips located within a 5~T superconducting solenoid. To align this detector, we used the Kalman Alignment Algorithm, which accounts for correlations between the alignment parameters without requiring the time-consuming inversion of large matrices. This is the first time that this algorithm has been adapted for use with hybrid technologies, non-parallel strips, and curved sensors. We present the results for the first alignment of the CLAS12 CVT using straight tracks from cosmic rays and from a target with the magnetic field turned off. After running this procedure, we achieved alignment at the level of 10~$渭$m, and the widths of the residual spectra were greatly reduced. These results attest to the flexibility of this algorithm and its applicability to future use in the CLAS12 CVT and other hybrid or curved trackers, such as those proposed for the future Electron-Ion Collider. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2208.05054v1-abstract-full').style.display = 'none'; document.getElementById('2208.05054v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 9 August, 2022; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> August 2022. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Nucl.Instrum.Meth.A 1049 (2023) 168032 </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2207.10632">arXiv:2207.10632</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2207.10632">pdf</a>, <a href="https://arxiv.org/format/2207.10632">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Instrumentation and Detectors">physics.ins-det</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="High Energy Physics - Experiment">hep-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> </div> <p class="title is-5 mathjax"> Open Heavy Flavor Studies for the ECCE Detector at the Electron Ion Collider </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Li%2C+X">X. Li</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Adkins%2C+J+K">J. K. Adkins</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Akiba%2C+Y">Y. Akiba</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Albataineh%2C+A">A. Albataineh</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Amaryan%2C+M">M. Amaryan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Arsene%2C+I+C">I. C. Arsene</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bae%2C+J">J. Bae</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bai%2C+X">X. Bai</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Baker%2C+M+D">M. D. Baker</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bashkanov%2C+M">M. Bashkanov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bellwied%2C+R">R. Bellwied</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Benmokhtar%2C+F">F. Benmokhtar</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Berdnikov%2C+V">V. Berdnikov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bernauer%2C+J+C">J. C. Bernauer</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bock%2C+F">F. Bock</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Boeglin%2C+W">W. Boeglin</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Borysova%2C+M">M. Borysova</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Brash%2C+E">E. Brash</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Brindza%2C+P">P. Brindza</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Briscoe%2C+W+J">W. J. Briscoe</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Brooks%2C+M">M. Brooks</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bueltmann%2C+S">S. Bueltmann</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bukhari%2C+M+H+S">M. H. S. Bukhari</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bylinkin%2C+A">A. Bylinkin</a> , et al. (262 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2207.10632v2-abstract-short" style="display: inline;"> The ECCE detector has been recommended as the selected reference detector for the future Electron-Ion Collider (EIC). A series of simulation studies have been carried out to validate the physics feasibility of the ECCE detector. In this paper, detailed studies of heavy flavor hadron and jet reconstruction and physics projections with the ECCE detector performance and different magnet options will&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2207.10632v2-abstract-full').style.display = 'inline'; document.getElementById('2207.10632v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2207.10632v2-abstract-full" style="display: none;"> The ECCE detector has been recommended as the selected reference detector for the future Electron-Ion Collider (EIC). A series of simulation studies have been carried out to validate the physics feasibility of the ECCE detector. In this paper, detailed studies of heavy flavor hadron and jet reconstruction and physics projections with the ECCE detector performance and different magnet options will be presented. The ECCE detector has enabled precise EIC heavy flavor hadron and jet measurements with a broad kinematic coverage. These proposed heavy flavor measurements will help systematically study the hadronization process in vacuum and nuclear medium especially in the underexplored kinematic region. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2207.10632v2-abstract-full').style.display = 'none'; document.getElementById('2207.10632v2-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 23 July, 2022; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 21 July, 2022; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> July 2022. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">Open heavy flavor studies with the EIC reference detector design by the ECCE consortium. 11 pages, 11 figures, to be submitted to the Nuclear Instruments and Methods A</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Report number:</span> LANL report number: LA-UR-22-27181 </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2207.10356">arXiv:2207.10356</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2207.10356">pdf</a>, <a href="https://arxiv.org/format/2207.10356">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Instrumentation and Detectors">physics.ins-det</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1016/j.nima.2022.167956">10.1016/j.nima.2022.167956 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Exclusive J/$蠄$ Detection and Physics with ECCE </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Li%2C+X">X. Li</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Adkins%2C+J+K">J. K. Adkins</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Akiba%2C+Y">Y. Akiba</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Albataineh%2C+A">A. Albataineh</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Amaryan%2C+M">M. Amaryan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Arsene%2C+I+C">I. C. Arsene</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bae%2C+J">J. Bae</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bai%2C+X">X. Bai</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Baker%2C+M+D">M. D. Baker</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bashkanov%2C+M">M. Bashkanov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bellwied%2C+R">R. Bellwied</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Benmokhtar%2C+F">F. Benmokhtar</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Berdnikov%2C+V">V. Berdnikov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bernauer%2C+J+C">J. C. Bernauer</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bock%2C+F">F. Bock</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Boeglin%2C+W">W. Boeglin</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Borysova%2C+M">M. Borysova</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Brash%2C+E">E. Brash</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Brindza%2C+P">P. Brindza</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Briscoe%2C+W+J">W. J. Briscoe</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Brooks%2C+M">M. Brooks</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bueltmann%2C+S">S. Bueltmann</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bukhari%2C+M+H+S">M. H. S. Bukhari</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bylinkin%2C+A">A. Bylinkin</a> , et al. (262 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2207.10356v1-abstract-short" style="display: inline;"> Exclusive heavy quarkonium photoproduction is one of the most popular processes in EIC, which has a large cross section and a simple final state. Due to the gluonic nature of the exchange Pomeron, this process can be related to the gluon distributions in the nucleus. The momentum transfer dependence of this process is sensitive to the interaction sites, which provides a powerful tool to probe the&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2207.10356v1-abstract-full').style.display = 'inline'; document.getElementById('2207.10356v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2207.10356v1-abstract-full" style="display: none;"> Exclusive heavy quarkonium photoproduction is one of the most popular processes in EIC, which has a large cross section and a simple final state. Due to the gluonic nature of the exchange Pomeron, this process can be related to the gluon distributions in the nucleus. The momentum transfer dependence of this process is sensitive to the interaction sites, which provides a powerful tool to probe the spatial distribution of gluons in the nucleus. Recently the problem of the origin of hadron mass has received lots of attention in determining the anomaly contribution $M_{a}$. The trace anomaly is sensitive to the gluon condensate, and exclusive production of quarkonia such as J/$蠄$ and $违$ can serve as a sensitive probe to constrain it. In this paper, we present the performance of the ECCE detector for exclusive J/$蠄$ detection and the capability of this process to investigate the above physics opportunities with ECCE. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2207.10356v1-abstract-full').style.display = 'none'; document.getElementById('2207.10356v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 21 July, 2022; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> July 2022. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">11 pages, 14 figures, 1 table</span> </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2207.09437">arXiv:2207.09437</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2207.09437">pdf</a>, <a href="https://arxiv.org/format/2207.09437">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Instrumentation and Detectors">physics.ins-det</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="High Energy Physics - Experiment">hep-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1016/j.nima.2023.168464">10.1016/j.nima.2023.168464 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Design and Simulated Performance of Calorimetry Systems for the ECCE Detector at the Electron Ion Collider </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Bock%2C+F">F. Bock</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Schmidt%2C+N">N. Schmidt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Wang%2C+P+K">P. K. Wang</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Santiesteban%2C+N">N. Santiesteban</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Horn%2C+T">T. Horn</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Huang%2C+J">J. Huang</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Lajoie%2C+J">J. Lajoie</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Camacho%2C+C+M">C. Munoz Camacho</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Adkins%2C+J+K">J. K. Adkins</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Akiba%2C+Y">Y. Akiba</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Albataineh%2C+A">A. Albataineh</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Amaryan%2C+M">M. Amaryan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Arsene%2C+I+C">I. C. Arsene</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bae%2C+J">J. Bae</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bai%2C+X">X. Bai</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Baker%2C+M+D">M. D. Baker</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bashkanov%2C+M">M. Bashkanov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bellwied%2C+R">R. Bellwied</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Benmokhtar%2C+F">F. Benmokhtar</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Berdnikov%2C+V">V. Berdnikov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bernauer%2C+J+C">J. C. Bernauer</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Boeglin%2C+W">W. Boeglin</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Borysova%2C+M">M. Borysova</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Brash%2C+E">E. Brash</a> , et al. (263 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2207.09437v1-abstract-short" style="display: inline;"> We describe the design and performance the calorimeter systems used in the ECCE detector design to achieve the overall performance specifications cost-effectively with careful consideration of appropriate technical and schedule risks. The calorimeter systems consist of three electromagnetic calorimeters, covering the combined pseudorapdity range from -3.7 to 3.8 and two hadronic calorimeters. Key&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2207.09437v1-abstract-full').style.display = 'inline'; document.getElementById('2207.09437v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2207.09437v1-abstract-full" style="display: none;"> We describe the design and performance the calorimeter systems used in the ECCE detector design to achieve the overall performance specifications cost-effectively with careful consideration of appropriate technical and schedule risks. The calorimeter systems consist of three electromagnetic calorimeters, covering the combined pseudorapdity range from -3.7 to 3.8 and two hadronic calorimeters. Key calorimeter performances which include energy and position resolutions, reconstruction efficiency, and particle identification will be presented. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2207.09437v1-abstract-full').style.display = 'none'; document.getElementById('2207.09437v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 19 July, 2022; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> July 2022. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">19 pages, 22 figures, 5 tables</span> </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2207.03850">arXiv:2207.03850</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2207.03850">pdf</a>, <a href="https://arxiv.org/format/2207.03850">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> </div> <p class="title is-5 mathjax"> First Measurement of the EMC Effect in $^{10}$B and $^{11}$B </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Karki%2C+A">A. Karki</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Biswas%2C+D">D. Biswas</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gonzalez%2C+F+A">F. A. Gonzalez</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Henry%2C+W">W. Henry</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Morean%2C+C">C. Morean</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Nadeeshani%2C+A">A. Nadeeshani</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Sun%2C+A">A. Sun</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Abrams%2C+D">D. Abrams</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ahmed%2C+Z">Z. Ahmed</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aljawrneh%2C+B">B. Aljawrneh</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Alsalmi%2C+S">S. Alsalmi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ambrose%2C+R">R. Ambrose</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Androic%2C+D">D. Androic</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Armstrong%2C+W">W. Armstrong</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Arrington%2C+J">J. Arrington</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Asaturyan%2C+A">A. Asaturyan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Assumin-Gyimah%2C+K">K. Assumin-Gyimah</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bandari%2C+A">A. Bandari</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bane%2C+J">J. Bane</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barrow%2C+J">J. Barrow</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Basnet%2C+S">S. Basnet</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Berdnikov%2C+V">V. Berdnikov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhatt%2C+H">H. Bhatt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhetuwal%2C+D">D. Bhetuwal</a> , et al. (72 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2207.03850v3-abstract-short" style="display: inline;"> The nuclear dependence of the inclusive inelastic electron scattering cross section (the EMC effect) has been measured for the first time in $^{10}$B and $^{11}$B. Previous measurements of the EMC effect in $A \leq 12$ nuclei showed an unexpected nuclear dependence; $^{10}$B and $^{11}$B were measured to explore the EMC effect in this region in more detail. Results are presented for $^9$Be,&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2207.03850v3-abstract-full').style.display = 'inline'; document.getElementById('2207.03850v3-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2207.03850v3-abstract-full" style="display: none;"> The nuclear dependence of the inclusive inelastic electron scattering cross section (the EMC effect) has been measured for the first time in $^{10}$B and $^{11}$B. Previous measurements of the EMC effect in $A \leq 12$ nuclei showed an unexpected nuclear dependence; $^{10}$B and $^{11}$B were measured to explore the EMC effect in this region in more detail. Results are presented for $^9$Be, $^{10}$B, $^{11}$B, and $^{12}$C at an incident beam energy of 10.6~GeV. The EMC effect in the boron isotopes was found to be similar to that for $^9$Be and $^{12}$C, yielding almost no nuclear dependence in the EMC effect in the range $A=4-12$. This represents important, new data supporting the hypothesis that the EMC effect depends primarily on the local nuclear environment due to the cluster structure of these nuclei. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2207.03850v3-abstract-full').style.display = 'none'; document.getElementById('2207.03850v3-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 31 July, 2023; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 8 July, 2022; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> July 2022. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">To appear in PRC</span> </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2205.13495">arXiv:2205.13495</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2205.13495">pdf</a>, <a href="https://arxiv.org/format/2205.13495">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1103/PhysRevC.108.025203">10.1103/PhysRevC.108.025203 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Constraints on the onset of color transparency from quasi-elastic $^{12}$C$(e,e&#39;p)$ up to $Q^2=\,14.2\,$(GeV$/c)^2$ </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Bhetuwal%2C+D">D. Bhetuwal</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Matter%2C+J">J. Matter</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Szumila-Vance%2C+H">H. Szumila-Vance</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kabir%2C+M+L">M. L. Kabir</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dutta%2C+D">D. Dutta</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ent%2C+R">R. Ent</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Abrams%2C+D">D. Abrams</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ahmed%2C+Z">Z. Ahmed</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aljawrneh%2C+B">B. Aljawrneh</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Alsalmi%2C+S">S. Alsalmi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ambrose%2C+R">R. Ambrose</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Androic%2C+D">D. Androic</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Armstrong%2C+W">W. Armstrong</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Asaturyan%2C+A">A. Asaturyan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Assumin-Gyimah%2C+K">K. Assumin-Gyimah</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bandari%2C+A">A. Bandari</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Basnet%2C+S">S. Basnet</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Berdnikov%2C+V">V. Berdnikov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhatt%2C+H">H. Bhatt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Biswas%2C+D">D. Biswas</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Boeglin%2C+W+U">W. U. Boeglin</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bosted%2C+P">P. Bosted</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Brash%2C+E">E. Brash</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bukhari%2C+M+H+S">M. H. S. Bukhari</a> , et al. (65 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2205.13495v2-abstract-short" style="display: inline;"> Quasi-elastic scattering on $^{12}$C$(e,e&#39;p)$ was measured in Hall C at Jefferson Lab for space-like 4-momentum transfer squared $Q^2$ in the range of 8--14.2\,(GeV/$c$)$^2$ with proton momenta up to 8.3\,GeV/$c$. The experiment was carried out in the upgraded Hall C at Jefferson Lab. It used the existing high momentum spectrometer and the new super high momentum spectrometer to detect the scatter&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2205.13495v2-abstract-full').style.display = 'inline'; document.getElementById('2205.13495v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2205.13495v2-abstract-full" style="display: none;"> Quasi-elastic scattering on $^{12}$C$(e,e&#39;p)$ was measured in Hall C at Jefferson Lab for space-like 4-momentum transfer squared $Q^2$ in the range of 8--14.2\,(GeV/$c$)$^2$ with proton momenta up to 8.3\,GeV/$c$. The experiment was carried out in the upgraded Hall C at Jefferson Lab. It used the existing high momentum spectrometer and the new super high momentum spectrometer to detect the scattered electrons and protons in coincidence. The nuclear transparency was extracted as the ratio of the measured yield to the yield calculated in the plane wave impulse approximation. Additionally, the transparency of the $1s_{1/2}$ and $1p_{3/2}$ shell protons in $^{12}$C was extracted, and the asymmetry of the missing momentum distribution was examined for hints of the quantum chromodynamics prediction of Color Transparency. All of these results were found to be consistent with traditional nuclear physics and inconsistent with the onset of Color Transparency. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2205.13495v2-abstract-full').style.display = 'none'; document.getElementById('2205.13495v2-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 14 August, 2023; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 26 May, 2022; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> May 2022. </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2205.11593">arXiv:2205.11593</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2205.11593">pdf</a>, <a href="https://arxiv.org/format/2205.11593">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Theory">nucl-th</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1103/PhysRevLett.129.042501">10.1103/PhysRevLett.129.042501 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Precision Determination of the Neutral Weak Form Factor of $^{48}$Ca </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Adhikari%2C+D">D. Adhikari</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Albataineh%2C+H">H. Albataineh</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Androic%2C+D">D. Androic</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aniol%2C+K+A">K. A. Aniol</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Armstrong%2C+D+S">D. S. Armstrong</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Averett%2C+T">T. Averett</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barcus%2C+S+K">S. K. Barcus</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bellini%2C+V">V. Bellini</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Beminiwattha%2C+R+S">R. S. Beminiwattha</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Benesch%2C+J+F">J. F. Benesch</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhatt%2C+H">H. Bhatt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Pathak%2C+D+B">D. Bhatta Pathak</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhetuwal%2C+D">D. Bhetuwal</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Blaikie%2C+B">B. Blaikie</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Boyd%2C+J">J. Boyd</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Campagna%2C+Q">Q. Campagna</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Camsonne%2C+A">A. Camsonne</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Cates%2C+G+D">G. D. Cates</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chen%2C+Y">Y. Chen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Clarke%2C+C">C. Clarke</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Cornejo%2C+J+C">J. C. Cornejo</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dusa%2C+S+C">S. Covrig Dusa</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dalton%2C+M+M">M. M. Dalton</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Datta%2C+P">P. Datta</a> , et al. (77 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2205.11593v2-abstract-short" style="display: inline;"> We report a precise measurement of the parity-violating asymmetry $A_{\rm PV}$ in the elastic scattering of longitudinally polarized electrons from $^{48}{\rm Ca}$. We measure $A_{\rm PV} =2668\pm 106\ {\rm (stat)}\pm 40\ {\rm (syst)}$ parts per billion, leading to an extraction of the neutral weak form factor $F_{\rm W} (q=0.8733$ fm&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2205.11593v2-abstract-full').style.display = 'inline'; document.getElementById('2205.11593v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2205.11593v2-abstract-full" style="display: none;"> We report a precise measurement of the parity-violating asymmetry $A_{\rm PV}$ in the elastic scattering of longitudinally polarized electrons from $^{48}{\rm Ca}$. We measure $A_{\rm PV} =2668\pm 106\ {\rm (stat)}\pm 40\ {\rm (syst)}$ parts per billion, leading to an extraction of the neutral weak form factor $F_{\rm W} (q=0.8733$ fm$^{-1}) = 0.1304 \pm 0.0052 \ {\rm (stat)}\pm 0.0020\ {\rm (syst)}$ and the charge minus the weak form factor $F_{\rm ch} - F_{\rm W} = 0.0277\pm 0.0055$. The resulting neutron skin thickness $R_n-R_p=0.121 \pm 0.026\ {\rm (exp)} \pm 0.024\ {\rm (model)}$~fm is relatively thin yet consistent with many model calculations. The combined CREX and PREX results will have implications for future energy density functional calculations and on the density dependence of the symmetry energy of nuclear matter. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2205.11593v2-abstract-full').style.display = 'none'; document.getElementById('2205.11593v2-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 16 June, 2022; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 23 May, 2022; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> May 2022. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">8 pages, 5 figures Replace 6-16-22: included ancillary files, corrected errors in references, author affiliations. Small text changes for clarity</span> </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2205.09185">arXiv:2205.09185</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2205.09185">pdf</a>, <a href="https://arxiv.org/format/2205.09185">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Instrumentation and Detectors">physics.ins-det</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Machine Learning">cs.LG</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="High Energy Physics - Experiment">hep-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Computational Physics">physics.comp-ph</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1016/j.nima.2022.167748">10.1016/j.nima.2022.167748 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> AI-assisted Optimization of the ECCE Tracking System at the Electron Ion Collider </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Fanelli%2C+C">C. Fanelli</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Papandreou%2C+Z">Z. Papandreou</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Suresh%2C+K">K. Suresh</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Adkins%2C+J+K">J. K. Adkins</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Akiba%2C+Y">Y. Akiba</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Albataineh%2C+A">A. Albataineh</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Amaryan%2C+M">M. Amaryan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Arsene%2C+I+C">I. C. Arsene</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bae%2C+J">J. Bae</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bai%2C+X">X. Bai</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Baker%2C+M+D">M. D. Baker</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bashkanov%2C+M">M. Bashkanov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bellwied%2C+R">R. Bellwied</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Benmokhtar%2C+F">F. Benmokhtar</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Berdnikov%2C+V">V. Berdnikov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bernauer%2C+J+C">J. C. Bernauer</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bock%2C+F">F. Bock</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Boeglin%2C+W">W. Boeglin</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Borysova%2C+M">M. Borysova</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Brash%2C+E">E. Brash</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Brindza%2C+P">P. Brindza</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Briscoe%2C+W+J">W. J. Briscoe</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Brooks%2C+M">M. Brooks</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bueltmann%2C+S">S. Bueltmann</a> , et al. (258 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2205.09185v2-abstract-short" style="display: inline;"> The Electron-Ion Collider (EIC) is a cutting-edge accelerator facility that will study the nature of the &#34;glue&#34; that binds the building blocks of the visible matter in the universe. The proposed experiment will be realized at Brookhaven National Laboratory in approximately 10 years from now, with detector design and R&amp;D currently ongoing. Notably, EIC is one of the first large-scale facilities to&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2205.09185v2-abstract-full').style.display = 'inline'; document.getElementById('2205.09185v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2205.09185v2-abstract-full" style="display: none;"> The Electron-Ion Collider (EIC) is a cutting-edge accelerator facility that will study the nature of the &#34;glue&#34; that binds the building blocks of the visible matter in the universe. The proposed experiment will be realized at Brookhaven National Laboratory in approximately 10 years from now, with detector design and R&amp;D currently ongoing. Notably, EIC is one of the first large-scale facilities to leverage Artificial Intelligence (AI) already starting from the design and R&amp;D phases. The EIC Comprehensive Chromodynamics Experiment (ECCE) is a consortium that proposed a detector design based on a 1.5T solenoid. The EIC detector proposal review concluded that the ECCE design will serve as the reference design for an EIC detector. Herein we describe a comprehensive optimization of the ECCE tracker using AI. The work required a complex parametrization of the simulated detector system. Our approach dealt with an optimization problem in a multidimensional design space driven by multiple objectives that encode the detector performance, while satisfying several mechanical constraints. We describe our strategy and show results obtained for the ECCE tracking system. The AI-assisted design is agnostic to the simulation framework and can be extended to other sub-detectors or to a system of sub-detectors to further optimize the performance of the EIC detector. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2205.09185v2-abstract-full').style.display = 'none'; document.getElementById('2205.09185v2-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 19 May, 2022; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 18 May, 2022; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> May 2022. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">16 pages, 18 figures, 2 appendices, 3 tables</span> </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2205.08607">arXiv:2205.08607</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2205.08607">pdf</a>, <a href="https://arxiv.org/format/2205.08607">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Instrumentation and Detectors">physics.ins-det</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="High Energy Physics - Experiment">hep-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Computational Physics">physics.comp-ph</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1016/j.nima.2022.167859">10.1016/j.nima.2022.167859 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Scientific Computing Plan for the ECCE Detector at the Electron Ion Collider </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Bernauer%2C+J+C">J. C. Bernauer</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dean%2C+C+T">C. T. Dean</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Fanelli%2C+C">C. Fanelli</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Huang%2C+J">J. Huang</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kauder%2C+K">K. Kauder</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Lawrence%2C+D">D. Lawrence</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Osborn%2C+J+D">J. D. Osborn</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Paus%2C+C">C. Paus</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Adkins%2C+J+K">J. K. Adkins</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Akiba%2C+Y">Y. Akiba</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Albataineh%2C+A">A. Albataineh</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Amaryan%2C+M">M. Amaryan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Arsene%2C+I+C">I. C. Arsene</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bae%2C+J">J. Bae</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bai%2C+X">X. Bai</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Baker%2C+M+D">M. D. Baker</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bashkanov%2C+M">M. Bashkanov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bellwied%2C+R">R. Bellwied</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Benmokhtar%2C+F">F. Benmokhtar</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Berdnikov%2C+V">V. Berdnikov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bock%2C+F">F. Bock</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Boeglin%2C+W">W. Boeglin</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Borysova%2C+M">M. Borysova</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Brash%2C+E">E. Brash</a> , et al. (256 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2205.08607v1-abstract-short" style="display: inline;"> The Electron Ion Collider (EIC) is the next generation of precision QCD facility to be built at Brookhaven National Laboratory in conjunction with Thomas Jefferson National Laboratory. There are a significant number of software and computing challenges that need to be overcome at the EIC. During the EIC detector proposal development period, the ECCE consortium began identifying and addressing thes&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2205.08607v1-abstract-full').style.display = 'inline'; document.getElementById('2205.08607v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2205.08607v1-abstract-full" style="display: none;"> The Electron Ion Collider (EIC) is the next generation of precision QCD facility to be built at Brookhaven National Laboratory in conjunction with Thomas Jefferson National Laboratory. There are a significant number of software and computing challenges that need to be overcome at the EIC. During the EIC detector proposal development period, the ECCE consortium began identifying and addressing these challenges in the process of producing a complete detector proposal based upon detailed detector and physics simulations. In this document, the software and computing efforts to produce this proposal are discussed; furthermore, the computing and software model and resources required for the future of ECCE are described. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2205.08607v1-abstract-full').style.display = 'none'; document.getElementById('2205.08607v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 17 May, 2022; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> May 2022. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> NIMA 1047, 167859 (2023) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2202.03398">arXiv:2202.03398</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2202.03398">pdf</a>, <a href="https://arxiv.org/format/2202.03398">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1103/PhysRevC.105.065201">10.1103/PhysRevC.105.065201 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Beam-Recoil Transferred Polarization in $K^+Y$ Electroproduction in the Nucleon Resonance Region with CLAS12 </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Carman%2C+D+S">D. S. Carman</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=D%27Angelo%2C+A">A. D&#39;Angelo</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Lanza%2C+L">L. Lanza</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Mokeev%2C+V+I">V. I. Mokeev</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Adhikari%2C+K+P">K. P. Adhikari</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Amaryan%2C+M+J">M. J. Amaryan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Armstrong%2C+W+R">W. R. Armstrong</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Atac%2C+H">H. Atac</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Avakian%2C+H">H. Avakian</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Baltzell%2C+N+A">N. A. Baltzell</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barion%2C+L">L. Barion</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Battaglieri%2C+M">M. Battaglieri</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bedlinskiy%2C+I">I. Bedlinskiy</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Benkel%2C+B">B. Benkel</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bianconi%2C+A">A. Bianconi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Biselli%2C+A+S">A. S. Biselli</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bondi%2C+M">M. Bondi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Boiarinov%2C+S">S. Boiarinov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bossu%2C+F">F. Bossu</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Briscoe%2C+W+J">W. J. Briscoe</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bueltmann%2C+S">S. Bueltmann</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bulumulla%2C+D">D. Bulumulla</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Burkert%2C+V+D">V. D. Burkert</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Capobianco%2C+R">R. Capobianco</a> , et al. (116 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2202.03398v1-abstract-short" style="display: inline;"> Beam-recoil transferred polarizations for the exclusive electroproduction of $K^+螞$ and $K^+危^0$ final states from an unpolarized proton target have been measured using the CLAS12 spectrometer at Jefferson Laboratory. The measurements at beam energies of 6.535~GeV and 7.546~GeV span the range of four-momentum transfer $Q^2$ from 0.3 to 4.5~GeV$^2$ and invariant energy $W$ from 1.6 to 2.4~GeV, whil&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2202.03398v1-abstract-full').style.display = 'inline'; document.getElementById('2202.03398v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2202.03398v1-abstract-full" style="display: none;"> Beam-recoil transferred polarizations for the exclusive electroproduction of $K^+螞$ and $K^+危^0$ final states from an unpolarized proton target have been measured using the CLAS12 spectrometer at Jefferson Laboratory. The measurements at beam energies of 6.535~GeV and 7.546~GeV span the range of four-momentum transfer $Q^2$ from 0.3 to 4.5~GeV$^2$ and invariant energy $W$ from 1.6 to 2.4~GeV, while covering the full center-of-mass angular range of the $K^+$. These new data extend the existing hyperon polarization data from CLAS in a similar kinematic range but from a significantly larger dataset. They represent an important addition to the world data, allowing for better exploration of the reaction mechanism in strangeness production processes, for further understanding of the spectrum and structure of excited nucleon states, and for improved insight into the strong interaction in the regime of non-perturbative dynamics. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2202.03398v1-abstract-full').style.display = 'none'; document.getElementById('2202.03398v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 7 February, 2022; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> February 2022. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">25 pages, 22 figures, 4 tables</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Report number:</span> JLAB-PHY-22-3560 </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2201.03714">arXiv:2201.03714</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2201.03714">pdf</a>, <a href="https://arxiv.org/format/2201.03714">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="High Energy Physics - Phenomenology">hep-ph</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="High Energy Physics - Experiment">hep-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1103/PhysRevLett.128.252002">10.1103/PhysRevLett.128.252002 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Deeply virtual Compton scattering cross section at high Bjorken $x_B$ </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Georges%2C+F">F. Georges</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Rashad%2C+M+N+H">M. N. H. Rashad</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Stefanko%2C+A">A. Stefanko</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dlamini%2C+M">M. Dlamini</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Karki%2C+B">B. Karki</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ali%2C+S+F">S. F. Ali</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Lin%2C+P">P-J. Lin</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ko%2C+H">H-S Ko</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Israel%2C+N">N. Israel</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Adikaram%2C+D">D. Adikaram</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ahmed%2C+Z">Z. Ahmed</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Albataineh%2C+H">H. Albataineh</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aljawrneh%2C+B">B. Aljawrneh</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Allada%2C+K">K. Allada</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Allison%2C+S">S. Allison</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Alsalmi%2C+S">S. Alsalmi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Androic%2C+D">D. Androic</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aniol%2C+K">K. Aniol</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Annand%2C+J">J. Annand</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Atac%2C+H">H. Atac</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Averett%2C+T">T. Averett</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bai%2C+X">X. Bai</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bane%2C+J">J. Bane</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barcus%2C+S">S. Barcus</a> , et al. (137 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2201.03714v1-abstract-short" style="display: inline;"> We report high-precision measurements of the Deeply Virtual Compton Scattering (DVCS) cross section at high values of the Bjorken variable $x_B$. DVCS is sensitive to the Generalized Parton Distributions of the nucleon, which provide a three-dimensional description of its internal constituents. Using the exact analytic expression of the DVCS cross section for all possible polarization states of th&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2201.03714v1-abstract-full').style.display = 'inline'; document.getElementById('2201.03714v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2201.03714v1-abstract-full" style="display: none;"> We report high-precision measurements of the Deeply Virtual Compton Scattering (DVCS) cross section at high values of the Bjorken variable $x_B$. DVCS is sensitive to the Generalized Parton Distributions of the nucleon, which provide a three-dimensional description of its internal constituents. Using the exact analytic expression of the DVCS cross section for all possible polarization states of the initial and final electron and nucleon, and final state photon, we present the first experimental extraction of all four helicity-conserving Compton Form Factors (CFFs) of the nucleon as a function of $x_B$, while systematically including helicity flip amplitudes. In particular, the high accuracy of the present data demonstrates sensitivity to some very poorly known CFFs. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2201.03714v1-abstract-full').style.display = 'none'; document.getElementById('2201.03714v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 10 January, 2022; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> January 2022. </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2111.04250">arXiv:2111.04250</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2111.04250">pdf</a>, <a href="https://arxiv.org/format/2111.04250">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1103/PhysRevLett.128.142501">10.1103/PhysRevLett.128.142501 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> New Measurements of the Beam-Normal Single Spin Asymmetry in Elastic Electron Scattering Over a Range of Spin-0 Nuclei </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=PREX"> PREX</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Collaborations%2C+C">CREX Collaborations</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=%3A"> :</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Adhikari%2C+D">D. Adhikari</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Albataineh%2C+H">H. Albataineh</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Androic%2C+D">D. Androic</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aniol%2C+K">K. Aniol</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Armstrong%2C+D+S">D. S. Armstrong</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Averett%2C+T">T. Averett</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barcus%2C+S">S. Barcus</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bellini%2C+V">V. Bellini</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Beminiwattha%2C+R+S">R. S. Beminiwattha</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Benesch%2C+J+F">J. F. Benesch</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhatt%2C+H">H. Bhatt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Pathak%2C+D+B">D. Bhatta Pathak</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhetuwal%2C+D">D. Bhetuwal</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Blaikie%2C+B">B. Blaikie</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Boyd%2C+J">J. Boyd</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Campagna%2C+Q">Q. Campagna</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Camsonne%2C+A">A. Camsonne</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Cates%2C+G+D">G. D. Cates</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chen%2C+Y">Y. Chen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Clarke%2C+C">C. Clarke</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Cornejo%2C+J+C">J. C. Cornejo</a> , et al. (82 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2111.04250v2-abstract-short" style="display: inline;"> We report precision determinations of the beam normal single spin asymmetries ($A_n$) in the elastic scattering of 0.95 and 2.18~GeV electrons off $^{12}$C, $^{40}$Ca, $^{48}$Ca, and $^{208}$Pb at very forward angles where the most detailed theoretical calculations have been performed. The first measurements of $A_n$ for $^{40}$Ca and $^{48}$Ca are found to be similar to that of $^{12}$C, consiste&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2111.04250v2-abstract-full').style.display = 'inline'; document.getElementById('2111.04250v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2111.04250v2-abstract-full" style="display: none;"> We report precision determinations of the beam normal single spin asymmetries ($A_n$) in the elastic scattering of 0.95 and 2.18~GeV electrons off $^{12}$C, $^{40}$Ca, $^{48}$Ca, and $^{208}$Pb at very forward angles where the most detailed theoretical calculations have been performed. The first measurements of $A_n$ for $^{40}$Ca and $^{48}$Ca are found to be similar to that of $^{12}$C, consistent with expectations thus demonstrating the validity of theoretical calculations for nuclei with Z~$\leq20$. We also report $A_n$ for $^{208}$Pb at two new momentum transfers (Q$^2$) extending the previous measurement. Our new data confirm the surprising result previously reported, with all three data points showing significant disagreement with the results from the $Z\leq 20$ nuclei. These data confirm our basic understanding of the underlying dynamics that govern $A_n$ for nuclei containing $\lesssim 50$ nucleons, but point to the need for further investigation to understand the unusual $A_n$ behaviour discovered for scattering off $^{208}$Pb. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2111.04250v2-abstract-full').style.display = 'none'; document.getElementById('2111.04250v2-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 9 August, 2022; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 7 November, 2021; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> November 2021. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">7 pages, 2 figures</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Phys.Rev.Lett. 128 (2022) 14, 142501 </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2110.09104">arXiv:2110.09104</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2110.09104">pdf</a>, <a href="https://arxiv.org/format/2110.09104">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Theory">nucl-th</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1093/ptep/ptab158">10.1093/ptep/ptab158 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> The cross-section measurement for the $^3{\textrm H}(e,e&#39;K^+)nn螞$ reaction </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Suzuki%2C+K+N">K. N. Suzuki</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gogami%2C+T">T. Gogami</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Pandey%2C+B">B. Pandey</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Itabashi%2C+K">K. Itabashi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Nagao%2C+S">S. Nagao</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Okuyama%2C+K">K. Okuyama</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Nakamura%2C+S+N">S. N. Nakamura</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Tang%2C+L">L. Tang</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Abrams%2C+D">D. Abrams</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Akiyama%2C+T">T. Akiyama</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Androic%2C+D">D. Androic</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aniol%2C+K">K. Aniol</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bane%2C+J">J. Bane</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barcus%2C+S">S. Barcus</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barrow%2C+J">J. Barrow</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bellini%2C+V">V. Bellini</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhatt%2C+H">H. Bhatt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhetuwal%2C+D">D. Bhetuwal</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Biswas%2C+D">D. Biswas</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Camsonne%2C+A">A. Camsonne</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Castellanos%2C+J">J. Castellanos</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chen%2C+J">J-P. Chen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chen%2C+J">J. Chen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Covrig%2C+S">S. Covrig</a> , et al. (58 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2110.09104v2-abstract-short" style="display: inline;"> The small binding energy of the hypertrition leads to predictions of non-existence of bound hypernuclei for isotriplet three-body systems such as $nn螞$. However, invariant mass spectroscopy at GSI has reported events that may be interpreted as the bound $nn螞$ state. The $nn螞$ state was sought by missing-mass spectroscopy via the $(e,e&#39;K^+)$ reaction at Jefferson Lab&#39;s experimental Hall A. The pres&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2110.09104v2-abstract-full').style.display = 'inline'; document.getElementById('2110.09104v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2110.09104v2-abstract-full" style="display: none;"> The small binding energy of the hypertrition leads to predictions of non-existence of bound hypernuclei for isotriplet three-body systems such as $nn螞$. However, invariant mass spectroscopy at GSI has reported events that may be interpreted as the bound $nn螞$ state. The $nn螞$ state was sought by missing-mass spectroscopy via the $(e,e&#39;K^+)$ reaction at Jefferson Lab&#39;s experimental Hall A. The present experiment has higher sensitivity to the $nn螞$-state investigation in terms of better precision by a factor of about three. The analysis shown in this article focuses on the derivation of the reaction cross-section for the $^3{\rm{H}}(纬^{*},K^+)\textrm{X}$ reaction. Events that were detected in an acceptance, where a Monte Carlo simulation could reproduce the data well ($|未p/p| &lt; 4\%$), were analyzed to minimize the systematic uncertainty. No significant structures were observed with the acceptance cuts, and the upper limits of the production cross-section of the $nn螞$ state were obtained to be $21$ and $31~\rm{nb/sr}$ at the $90\%$ confidence level when theoretical predictions of $(-B_螞, 螕) = (0.25,0.8)$ and $(0.55, 4.7)$ MeV, respectively, were assumed. The cross-section result provides valuable information for examining the existence of $nn螞$. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2110.09104v2-abstract-full').style.display = 'none'; document.getElementById('2110.09104v2-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 24 January, 2022; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 18 October, 2021; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> October 2021. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">27 pages, 12 figures</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Prog. Theor. Exp. Phys. 2022, 013D01 (2022) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2109.09508">arXiv:2109.09508</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2109.09508">pdf</a>, <a href="https://arxiv.org/format/2109.09508">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Instrumentation and Detectors">physics.ins-det</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1103/PhysRevC.105.055201">10.1103/PhysRevC.105.055201 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Characterization of Muon and Electron Beams in the Paul Scherrer Institute PiM1 Channel for the MUSE Experiment </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Cline%2C+E">E. Cline</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Lin%2C+W">W. Lin</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Roy%2C+P">P. Roy</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Reimer%2C+P+E">P. E. Reimer</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Mesick%2C+K+E">K. E. Mesick</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Akmal%2C+A">A. Akmal</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Alie%2C+A">A. Alie</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Atac%2C+H">H. Atac</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Atencio%2C+A">A. Atencio</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Benmouna%2C+N">N. Benmouna</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Benmokhtar%2C+F">F. Benmokhtar</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bernauer%2C+J+C">J. C. Bernauer</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Briscoe%2C+W+J">W. J. Briscoe</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Campbell%2C+J">J. Campbell</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Cohen%2C+D">D. Cohen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Cohen%2C+E+O">E. O. Cohen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Collicott%2C+C">C. Collicott</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Deiters%2C+K">K. Deiters</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dogra%2C+S">S. Dogra</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Downie%2C+E">E. Downie</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Fernando%2C+I+P">I. P. Fernando</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Flannery%2C+A">A. Flannery</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gautam%2C+T">T. Gautam</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ghosal%2C+D">D. Ghosal</a> , et al. (35 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2109.09508v1-abstract-short" style="display: inline;"> The MUon Scattering Experiment, MUSE, at the Paul Scherrer Institute, Switzerland, investigates the proton charge radius puzzle, lepton universality, and two-photon exchange, via simultaneous measurements of elastic muon-proton and electron-proton scattering. The experiment uses the PiM1 secondary beam channel, which was designed for high precision pion scattering measurements. We review the prope&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2109.09508v1-abstract-full').style.display = 'inline'; document.getElementById('2109.09508v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2109.09508v1-abstract-full" style="display: none;"> The MUon Scattering Experiment, MUSE, at the Paul Scherrer Institute, Switzerland, investigates the proton charge radius puzzle, lepton universality, and two-photon exchange, via simultaneous measurements of elastic muon-proton and electron-proton scattering. The experiment uses the PiM1 secondary beam channel, which was designed for high precision pion scattering measurements. We review the properties of the beam line established for pions. We discuss the production processes that generate the electron and muon beams, and the simulations of these processes. Simulations of the $蟺$/$渭$/$e$ beams through the channel using TURTLE and G4beamline are compared. The G4beamline simulation is then compared to several experimental measurements of the channel, including the momentum dispersion at the IFP and target, the shape of the beam spot at the target, and timing measurements that allow the beam momenta to be determined. We conclude that the PiM1 channel can be used for high precision $蟺$, $渭$, and $e$ scattering. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2109.09508v1-abstract-full').style.display = 'none'; document.getElementById('2109.09508v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 15 September, 2021; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> September 2021. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">20 pages, 18 figures</span> </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2107.06748">arXiv:2107.06748</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2107.06748">pdf</a>, <a href="https://arxiv.org/ps/2107.06748">ps</a>, <a href="https://arxiv.org/format/2107.06748">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="High Energy Physics - Phenomenology">hep-ph</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Theory">nucl-th</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1140/epja/s10050-021-00625-2">10.1140/epja/s10050-021-00625-2 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Progress and Opportunities in Backward angle (u-channel) Physics </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bibrzycki%2C+%C5%81">艁. Bibrzycki</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Diehl%2C+S">S. Diehl</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Heppelmann%2C+S">S. Heppelmann</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Higinbotham%2C+D+W">D. W. Higinbotham</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Huber%2C+G+M">G. M. Huber</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kay%2C+S+J+D">S. J. D. Kay</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Klein%2C+S+R">S. R. Klein</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Laget%2C+J+M">J. M. Laget</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Li%2C+W+B">W. B. Li</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Mathieu%2C+V">V. Mathieu</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Park%2C+K">K. Park</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Perry%2C+R+J">R. J. Perry</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Pire%2C+B">B. Pire</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Semenov-Tian-Shansky%2C+K">K. Semenov-Tian-Shansky</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Stanek%2C+A">A. Stanek</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Stevens%2C+J+R">J. R. Stevens</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Szymanowski%2C+L">L. Szymanowski</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Weiss%2C+C">C. Weiss</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Yu%2C+B+-">B. -G. Yu</a> </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2107.06748v5-abstract-short" style="display: inline;"> Backward angle (u-channel) scattering provides complementary information for studies of hadron spectroscopy and structure, but has been less comprehensively studied than the corresponding forward angle case. As a result, the physics of u-channel scattering poses a range of new experimental and theoretical opportunities and questions. We summarize recent progress in measuring and understanding high&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2107.06748v5-abstract-full').style.display = 'inline'; document.getElementById('2107.06748v5-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2107.06748v5-abstract-full" style="display: none;"> Backward angle (u-channel) scattering provides complementary information for studies of hadron spectroscopy and structure, but has been less comprehensively studied than the corresponding forward angle case. As a result, the physics of u-channel scattering poses a range of new experimental and theoretical opportunities and questions. We summarize recent progress in measuring and understanding high energy reactions with baryon charge exchange in the u-channel, as discussed in the first backward angle (u-channel) Physics Workshop. In particular, we discuss backward angle measurements and their theoretical description via both hadronic models and the collinear factorization approach, and discuss planned future measurements of u-channel physics. Finally, we propose outstanding questions and challenges for u-channel physics. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2107.06748v5-abstract-full').style.display = 'none'; document.getElementById('2107.06748v5-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 9 February, 2022; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 14 July, 2021; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> July 2021. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Eur. Phys. J. A (2021) 57 :342 </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2103.05419">arXiv:2103.05419</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2103.05419">pdf</a>, <a href="https://arxiv.org/format/2103.05419">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Instrumentation and Detectors">physics.ins-det</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="High Energy Physics - Experiment">hep-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="High Energy Physics - Phenomenology">hep-ph</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Theory">nucl-th</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1016/j.nuclphysa.2022.122447">10.1016/j.nuclphysa.2022.122447 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Science Requirements and Detector Concepts for the Electron-Ion Collider: EIC Yellow Report </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Khalek%2C+R+A">R. Abdul Khalek</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Accardi%2C+A">A. Accardi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Adam%2C+J">J. Adam</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Adamiak%2C+D">D. Adamiak</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Akers%2C+W">W. Akers</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Albaladejo%2C+M">M. Albaladejo</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Al-bataineh%2C+A">A. Al-bataineh</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Alexeev%2C+M+G">M. G. Alexeev</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ameli%2C+F">F. Ameli</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Antonioli%2C+P">P. Antonioli</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Armesto%2C+N">N. Armesto</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Armstrong%2C+W+R">W. R. Armstrong</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Arratia%2C+M">M. Arratia</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Arrington%2C+J">J. Arrington</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Asaturyan%2C+A">A. Asaturyan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Asai%2C+M">M. Asai</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aschenauer%2C+E+C">E. C. Aschenauer</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aune%2C+S">S. Aune</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Avagyan%2C+H">H. Avagyan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Azmoun%2C+B">B. Azmoun</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bacchetta%2C+A">A. Bacchetta</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Baker%2C+M+D">M. D. Baker</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barbosa%2C+F">F. Barbosa</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barion%2C+L">L. Barion</a> , et al. (390 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2103.05419v3-abstract-short" style="display: inline;"> This report describes the physics case, the resulting detector requirements, and the evolving detector concepts for the experimental program at the Electron-Ion Collider (EIC). The EIC will be a powerful new high-luminosity facility in the United States with the capability to collide high-energy electron beams with high-energy proton and ion beams, providing access to those regions in the nucleon&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2103.05419v3-abstract-full').style.display = 'inline'; document.getElementById('2103.05419v3-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2103.05419v3-abstract-full" style="display: none;"> This report describes the physics case, the resulting detector requirements, and the evolving detector concepts for the experimental program at the Electron-Ion Collider (EIC). The EIC will be a powerful new high-luminosity facility in the United States with the capability to collide high-energy electron beams with high-energy proton and ion beams, providing access to those regions in the nucleon and nuclei where their structure is dominated by gluons. Moreover, polarized beams in the EIC will give unprecedented access to the spatial and spin structure of the proton, neutron, and light ions. The studies leading to this document were commissioned and organized by the EIC User Group with the objective of advancing the state and detail of the physics program and developing detector concepts that meet the emerging requirements in preparation for the realization of the EIC. The effort aims to provide the basis for further development of concepts for experimental equipment best suited for the science needs, including the importance of two complementary detectors and interaction regions. This report consists of three volumes. Volume I is an executive summary of our findings and developed concepts. In Volume II we describe studies of a wide range of physics measurements and the emerging requirements on detector acceptance and performance. Volume III discusses general-purpose detector concepts and the underlying technologies to meet the physics requirements. These considerations will form the basis for a world-class experimental program that aims to increase our understanding of the fundamental structure of all visible matter <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2103.05419v3-abstract-full').style.display = 'none'; document.getElementById('2103.05419v3-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 26 October, 2021; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 8 March, 2021; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> March 2021. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">902 pages, 415 authors, 151 institutions</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Report number:</span> BNL-220990-2021-FORE, JLAB-PHY-21-3198, LA-UR-21-20953 </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Nucl. Phys. A 1026 (2022) 122447 </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2103.01842">arXiv:2103.01842</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2103.01842">pdf</a>, <a href="https://arxiv.org/format/2103.01842">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="High Energy Physics - Experiment">hep-ex</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1103/PhysRevLett.128.102002">10.1103/PhysRevLett.128.102002 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Form Factors and Two-Photon Exchange in High-Energy Elastic Electron-Proton Scattering </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Christy%2C+M+E">M. E. Christy</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gautam%2C+T">T. Gautam</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ou%2C+L">L. Ou</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Schmookler%2C+B">B. Schmookler</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Wang%2C+Y">Y. Wang</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Adikaram%2C+D">D. Adikaram</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ahmed%2C+Z">Z. Ahmed</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Albataineh%2C+H">H. Albataineh</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ali%2C+S+F">S. F. Ali</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aljawrneh%2C+B">B. Aljawrneh</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Allada%2C+K">K. Allada</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Allison%2C+S+L">S. L. Allison</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Alsalmi%2C+S">S. Alsalmi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Androic%2C+D">D. Androic</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aniol%2C+K">K. Aniol</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Annand%2C+J">J. Annand</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Arrington%2C+J">J. Arrington</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Atac%2C+H">H. Atac</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Averett%2C+T">T. Averett</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bai%2C+X">X. Bai</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bane%2C+J">J. Bane</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barcus%2C+S">S. Barcus</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bartlett%2C+K">K. Bartlett</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bellini%2C+V">V. Bellini</a> , et al. (145 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2103.01842v3-abstract-short" style="display: inline;"> We present new precision measurements of the elastic electron-proton scattering cross section for momentum transfer (Q$^2$) up to 15.75~\gevsq. Combined with existing data, these provide an improved extraction of the proton magnetic form factor at high Q$^2$ and double the range over which a longitudinal/transverse separation of the cross section can be performed. The difference between our result&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2103.01842v3-abstract-full').style.display = 'inline'; document.getElementById('2103.01842v3-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2103.01842v3-abstract-full" style="display: none;"> We present new precision measurements of the elastic electron-proton scattering cross section for momentum transfer (Q$^2$) up to 15.75~\gevsq. Combined with existing data, these provide an improved extraction of the proton magnetic form factor at high Q$^2$ and double the range over which a longitudinal/transverse separation of the cross section can be performed. The difference between our results and polarization data agrees with that observed at lower Q$^2$ and attributed to hard two-photon exchange (TPE) effects, extending to 8~(GeV/c)$^2$ the range of Q$^2$ for which a discrepancy is established at $&gt;$95\% confidence. We use the discrepancy to quantify the size of TPE contributions needed to explain the cross section at high Q$^2$. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2103.01842v3-abstract-full').style.display = 'none'; document.getElementById('2103.01842v3-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 21 March, 2022; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 2 March, 2021; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> March 2021. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">7 pages, 2 figures</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Phys. Rev. Lett. 128, 102002 (2022) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2102.11788">arXiv:2102.11788</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2102.11788">pdf</a>, <a href="https://arxiv.org/format/2102.11788">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="High Energy Physics - Phenomenology">hep-ph</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Theory">nucl-th</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1088/1361-6471/abf5c3">10.1088/1361-6471/abf5c3 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Revealing the structure of light pseudoscalar mesons at the Electron-Ion Collider </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Arrington%2C+J">John Arrington</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">Carlos Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barry%2C+P+C">Patrick C Barry</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Berdnikov%2C+V">Vladimir Berdnikov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Binosi%2C+D">Daniele Binosi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chang%2C+L">Lei Chang</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Diefenthaler%2C+M">Markus Diefenthaler</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ding%2C+M">Minghui Ding</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ent%2C+R">Rolf Ent</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Frederico%2C+T">Tobias Frederico</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Furletova%2C+Y">Yulia Furletova</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hobbs%2C+T+J">Tim J Hobbs</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Horn%2C+T">Tanja Horn</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Huber%2C+G+M">Garth M Huber</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kay%2C+S+J">Stephen JD Kay</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Keppel%2C+C">Cynthia Keppel</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Lin%2C+H">Huy-Wen Lin</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Mezrag%2C+C">Cedric Mezrag</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Montgomery%2C+R">Rachel Montgomery</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Pegg%2C+I+L">Ian L Pegg</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Raya%2C+K">Khepani Raya</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Reimer%2C+P">Paul Reimer</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Richards%2C+D+G">David G Richards</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Roberts%2C+C+D">Craig D Roberts</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Rodriguez-Quintero%2C+J">Jose Rodriguez-Quintero</a> , et al. (7 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2102.11788v1-abstract-short" style="display: inline;"> How the bulk of the Universe&#39;s visible mass emerges and how it is manifest in the existence and properties of hadrons are profound questions that probe into the heart of strongly interacting matter. Paradoxically, the lightest pseudoscalar mesons appear to be the key to the further understanding of the emergent mass and structure mechanisms. These mesons, namely the pion and kaon, are the Nambu-Go&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2102.11788v1-abstract-full').style.display = 'inline'; document.getElementById('2102.11788v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2102.11788v1-abstract-full" style="display: none;"> How the bulk of the Universe&#39;s visible mass emerges and how it is manifest in the existence and properties of hadrons are profound questions that probe into the heart of strongly interacting matter. Paradoxically, the lightest pseudoscalar mesons appear to be the key to the further understanding of the emergent mass and structure mechanisms. These mesons, namely the pion and kaon, are the Nambu-Goldstone boson modes of QCD. Unravelling their partonic structure and the interplay between emergent and Higgs-boson mass mechanisms is a common goal of three interdependent approaches -- continuum QCD phenomenology, lattice-regularised QCD, and the global analysis of parton distributions -- linked to experimental measurements of hadron structure. Experimentally, the foreseen electron-ion collider will enable a revolution in our ability to study pion and kaon structure, accessed by scattering from the &#34;meson cloud&#34; of the proton through the Sullivan process. With the goal of enabling a suite of measurements that can address these questions, we examine key reactions to identify the critical detector system requirements needed to map tagged pion and kaon cross sections over a wide range of kinematics. The excellent prospects for extracting pion structure function and form factor data are shown, and similar prospects for kaon structure are discussed in the context of a worldwide programme. Successful completion of the programme outlined herein will deliver deep, far-reaching insights into the emergence of pions and kaons, their properties, and their role as QCD&#39;s Goldstone boson modes. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2102.11788v1-abstract-full').style.display = 'none'; document.getElementById('2102.11788v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 23 February, 2021; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> February 2021. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">73 pages, 27 figures</span> </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2102.10767">arXiv:2102.10767</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2102.10767">pdf</a>, <a href="https://arxiv.org/format/2102.10767">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1103/PhysRevLett.126.172502">10.1103/PhysRevLett.126.172502 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Accurate Determination of the Neutron Skin Thickness of $^{208}$Pb through Parity-Violation in Electron Scattering </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Adhikari%2C+D">D. Adhikari</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Albataineh%2C+H">H. Albataineh</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Androic%2C+D">D. Androic</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aniol%2C+K">K. Aniol</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Armstrong%2C+D+S">D. S. Armstrong</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Averett%2C+T">T. Averett</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barcus%2C+S">S. Barcus</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bellini%2C+V">V. Bellini</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Beminiwattha%2C+R+S">R. S. Beminiwattha</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Benesch%2C+J+F">J. F. Benesch</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhatt%2C+H">H. Bhatt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Pathak%2C+D+B">D. Bhatta Pathak</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhetuwal%2C+D">D. Bhetuwal</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Blaikie%2C+B">B. Blaikie</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Campagna%2C+Q">Q. Campagna</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Camsonne%2C+A">A. Camsonne</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Cates%2C+G+D">G. D. Cates</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chen%2C+Y">Y. Chen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Clarke%2C+C">C. Clarke</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Cornejo%2C+J+C">J. C. Cornejo</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dusa%2C+S+C">S. Covrig Dusa</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Datta%2C+P">P. Datta</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Deshpande%2C+A">A. Deshpande</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dutta%2C+D">D. Dutta</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Feldman%2C+C">C. Feldman</a> , et al. (76 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2102.10767v2-abstract-short" style="display: inline;"> We report a precision measurement of the parity-violating asymmetry $A_{PV}$ in the elastic scattering of longitudinally polarized electrons from $^{208}$Pb. We measure $A_{PV}=550\pm 16 {\rm (stat)}\pm 8\ {\rm (syst)}$ parts per billion, leading to an extraction of the neutral weak form factor $F_W(Q^2 = 0.00616\ {\rm GeV}^2) = 0.368 \pm 0.013$. Combined with our previous measurement, the extract&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2102.10767v2-abstract-full').style.display = 'inline'; document.getElementById('2102.10767v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2102.10767v2-abstract-full" style="display: none;"> We report a precision measurement of the parity-violating asymmetry $A_{PV}$ in the elastic scattering of longitudinally polarized electrons from $^{208}$Pb. We measure $A_{PV}=550\pm 16 {\rm (stat)}\pm 8\ {\rm (syst)}$ parts per billion, leading to an extraction of the neutral weak form factor $F_W(Q^2 = 0.00616\ {\rm GeV}^2) = 0.368 \pm 0.013$. Combined with our previous measurement, the extracted neutron skin thickness is $R_n-R_p=0.283 \pm 0.071$~fm. The result also yields the first significant direct measurement of the interior weak density of $^{208}$Pb: $蟻^0_W = -0.0796\pm0.0036\ {\rm (exp.)}\pm0.0013\ {\rm (theo.)}\ {\rm fm}^{-3}$ leading to the interior baryon density $蟻^0_b = 0.1480\pm0.0036\ {\rm (exp.)}\pm0.0013\ {\rm (theo.)}\ {\rm fm}^{-3}$. The measurement accurately constrains the density dependence of the symmetry energy of nuclear matter near saturation density, with implications for the size and composition of neutron stars. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2102.10767v2-abstract-full').style.display = 'none'; document.getElementById('2102.10767v2-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 26 April, 2021; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 21 February, 2021; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> February 2021. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Phys. Rev. Lett. 126, 172502 (2021) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2102.07419">arXiv:2102.07419</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2102.07419">pdf</a>, <a href="https://arxiv.org/format/2102.07419">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1103/PhysRevC.104.025203">10.1103/PhysRevC.104.025203 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Measurement of deeply virtual Compton scattering off Helium-4 with CLAS at Jefferson Lab </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Dupr%C3%A9%2C+R">R. Dupr茅</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hattawy%2C+M">M. Hattawy</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Baltzell%2C+N+A">N. A. Baltzell</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=B%C3%BCltmann%2C+S">S. B眉ltmann</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=De+Vita%2C+R">R. De Vita</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Alaoui%2C+A+E">A. El Alaoui</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Fassi%2C+L+E">L. El Fassi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Egiyan%2C+H">H. Egiyan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Girod%2C+F+X">F. X. Girod</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Guidal%2C+M">M. Guidal</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hafidi%2C+K">K. Hafidi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Jenkins%2C+D">D. Jenkins</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Liuti%2C+S">S. Liuti</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Perrin%2C+Y">Y. Perrin</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Stepanyan%2C+S">S. Stepanyan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Torayev%2C+B">B. Torayev</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Voutier%2C+E">E. Voutier</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Amaryan%2C+M+J">M. J. Amaryan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Armstrong%2C+W+R">W. R. Armstrong</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Atac%2C+H">H. Atac</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barion%2C+L">L. Barion</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Battaglieri%2C+M">M. Battaglieri</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bedlinskiy%2C+I">I. Bedlinskiy</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Benmokhtar%2C+F">F. Benmokhtar</a> , et al. (116 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2102.07419v2-abstract-short" style="display: inline;"> We report on the measurement of the beam spin asymmetry in the deeply virtual Compton scattering off $^4$He using the CEBAF Large Acceptance Spectrometer (CLAS) at Jefferson Lab using a 6 GeV longitudinally polarized electron beam incident on a pressurized $^4$He gaseous target. We detail the method used to ensure the exclusivity of the measured reactions, in particular the upgrade of CLAS with a&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2102.07419v2-abstract-full').style.display = 'inline'; document.getElementById('2102.07419v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2102.07419v2-abstract-full" style="display: none;"> We report on the measurement of the beam spin asymmetry in the deeply virtual Compton scattering off $^4$He using the CEBAF Large Acceptance Spectrometer (CLAS) at Jefferson Lab using a 6 GeV longitudinally polarized electron beam incident on a pressurized $^4$He gaseous target. We detail the method used to ensure the exclusivity of the measured reactions, in particular the upgrade of CLAS with a radial time projection chamber to detect the low-energy recoiling $^4$He nuclei and an inner calorimeter to extend the photon detection acceptance at forward angles. Our results confirm the theoretically predicted enhancement of the coherent ($e^4$He$~\to~e&#39;$$^4$He$&#39;纬&#39;$) beam spin asymmetries compared to those observed on the free proton, while the incoherent ($e^4$He$~\to~e&#39;$p$&#39;纬&#39;$X$&#39;$) asymmetries exhibit a 30$\%$ suppression. From the coherent data, we were able to extract, in a model-independent way, the real and imaginary parts of the only $^4$He Compton form factor, $\cal H_A$, leading the way toward 3D imaging of the partonic structure of nuclei. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2102.07419v2-abstract-full').style.display = 'none'; document.getElementById('2102.07419v2-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 16 August, 2021; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 15 February, 2021; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> February 2021. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Phys. Rev. C 104, 025203 (2021) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2011.11125">arXiv:2011.11125</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2011.11125">pdf</a>, <a href="https://arxiv.org/format/2011.11125">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="High Energy Physics - Experiment">hep-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1103/PhysRevLett.127.152301">10.1103/PhysRevLett.127.152301 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Deep exclusive electroproduction of $蟺^0$ at high $Q^2$ in the quark valence regime </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=The+Jefferson+Lab+Hall+A+Collaboration"> The Jefferson Lab Hall A Collaboration</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dlamini%2C+M">M. Dlamini</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Karki%2C+B">B. Karki</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ali%2C+S+F">S. F. Ali</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Lin%2C+P">P-J. Lin</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Georges%2C+F">F. Georges</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ko%2C+H">H-S Ko</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Israel%2C+N">N. Israel</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Rashad%2C+M+N+H">M. N. H. Rashad</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Stefanko%2C+A">A. Stefanko</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Adikaram%2C+D">D. Adikaram</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ahmed%2C+Z">Z. Ahmed</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Albataineh%2C+H">H. Albataineh</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aljawrneh%2C+B">B. Aljawrneh</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Allada%2C+K">K. Allada</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Allison%2C+S">S. Allison</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Alsalmi%2C+S">S. Alsalmi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Androic%2C+D">D. Androic</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aniol%2C+K">K. Aniol</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Annand%2C+J">J. Annand</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Atac%2C+H">H. Atac</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Averett%2C+T">T. Averett</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bai%2C+X">X. Bai</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bane%2C+J">J. Bane</a> , et al. (137 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2011.11125v2-abstract-short" style="display: inline;"> We report measurements of the exclusive neutral pion electroproduction cross section off protons at large values of $x_B$ (0.36, 0.48 and 0.60) and $Q^2$ (3.1 to 8.4 GeV$^2$) obtained from Jefferson Lab Hall A experiment E12-06-014. The corresponding structure functions $d蟽_L/dt+蔚d蟽_T/dt$, $d蟽_{TT}/dt$, $d蟽_{LT}/dt$ and $d蟽_{LT&#39;}/dt$ are extracted as a function of the proton momentum transfer&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2011.11125v2-abstract-full').style.display = 'inline'; document.getElementById('2011.11125v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2011.11125v2-abstract-full" style="display: none;"> We report measurements of the exclusive neutral pion electroproduction cross section off protons at large values of $x_B$ (0.36, 0.48 and 0.60) and $Q^2$ (3.1 to 8.4 GeV$^2$) obtained from Jefferson Lab Hall A experiment E12-06-014. The corresponding structure functions $d蟽_L/dt+蔚d蟽_T/dt$, $d蟽_{TT}/dt$, $d蟽_{LT}/dt$ and $d蟽_{LT&#39;}/dt$ are extracted as a function of the proton momentum transfer $t-t_{min}$. The results suggest the amplitude for transversely polarized virtual photons continues to dominate the cross-section throughout this kinematic range. The data are well described by calculations based on transversity Generalized Parton Distributions coupled to a helicity flip Distribution Amplitude of the pion, thus providing a unique way to probe the structure of the nucleon. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2011.11125v2-abstract-full').style.display = 'none'; document.getElementById('2011.11125v2-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 25 October, 2021; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 22 November, 2020; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> November 2020. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Phys. Rev. Lett. 127, 152301 (2021) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2011.00703">arXiv:2011.00703</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2011.00703">pdf</a>, <a href="https://arxiv.org/format/2011.00703">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="High Energy Physics - Experiment">hep-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Theory">nucl-th</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1103/PhysRevLett.126.082301">10.1103/PhysRevLett.126.082301 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Ruling out color transparency in quasi-elastic $^{12}$C(e,e&#39;p) up to $Q^2$ of 14.2 (GeV/c)$^2$ </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Bhetuwal%2C+D">D. Bhetuwal</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Matter%2C+J">J. Matter</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Szumila-Vance%2C+H">H. Szumila-Vance</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kabir%2C+M+L">M. L. Kabir</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dutta%2C+D">D. Dutta</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ent%2C+R">R. Ent</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Abrams%2C+D">D. Abrams</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ahmed%2C+Z">Z. Ahmed</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aljawrneh%2C+B">B. Aljawrneh</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Alsalmi%2C+S">S. Alsalmi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ambrose%2C+R">R. Ambrose</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Androic%2C+D">D. Androic</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Armstrong%2C+W">W. Armstrong</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Asaturyan%2C+A">A. Asaturyan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Assumin-Gyimah%2C+K">K. Assumin-Gyimah</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bandari%2C+A">A. Bandari</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Basnet%2C+S">S. Basnet</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Berdnikov%2C+V">V. Berdnikov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhatt%2C+H">H. Bhatt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Biswas%2C+D">D. Biswas</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Boeglin%2C+W+U">W. U. Boeglin</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bosted%2C+P">P. Bosted</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Brash%2C+E">E. Brash</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bukhari%2C+M+H+S">M. H. S. Bukhari</a> , et al. (65 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2011.00703v2-abstract-short" style="display: inline;"> Quasielastic $^{12}$C$(e,e&#39;p)$ scattering was measured at space-like 4-momentum transfer squared $Q^2$~=~8, 9.4, 11.4, and 14.2 (GeV/c)$^2$, the highest ever achieved to date. Nuclear transparency for this reaction was extracted by comparing the measured yield to that expected from a plane-wave impulse approximation calculation without any final state interactions. The measured transparency was co&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2011.00703v2-abstract-full').style.display = 'inline'; document.getElementById('2011.00703v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2011.00703v2-abstract-full" style="display: none;"> Quasielastic $^{12}$C$(e,e&#39;p)$ scattering was measured at space-like 4-momentum transfer squared $Q^2$~=~8, 9.4, 11.4, and 14.2 (GeV/c)$^2$, the highest ever achieved to date. Nuclear transparency for this reaction was extracted by comparing the measured yield to that expected from a plane-wave impulse approximation calculation without any final state interactions. The measured transparency was consistent with no $Q^2$ dependence, up to proton momenta of 8.5~GeV/c, ruling out the quantum chromodynamics effect of color transparency at the measured $Q^2$ scales in exclusive $(e,e&#39;p)$ reactions. These results impose strict constraints on models of color transparency for protons. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2011.00703v2-abstract-full').style.display = 'none'; document.getElementById('2011.00703v2-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 1 March, 2021; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 1 November, 2020; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> November 2020. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">5 pages, 2 figures</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Phys. Rev. Lett. 126, 082301 (2021) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2008.10768">arXiv:2008.10768</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2008.10768">pdf</a>, <a href="https://arxiv.org/ps/2008.10768">ps</a>, <a href="https://arxiv.org/format/2008.10768">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> </div> <p class="title is-5 mathjax"> Backward-angle Exclusive pi0 Production above the Resonance Region </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Li%2C+W+B">W. B. Li</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Huber%2C+G+M">G. M. Huber</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Stevens%2C+J+R">J. R. Stevens</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Semenov-Tian-Shansky%2C+K">K. Semenov-Tian-Shansky</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Szymanowski%2C+L">L. Szymanowski</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Pire%2C+B">B. Pire</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Amaryan%2C+M">M. Amaryan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Androic%2C+D">D. Androic</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aniol%2C+K">K. Aniol</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Armstrong%2C+D">D. Armstrong</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Averett%2C+T">T. Averett</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Boeglin%2C+W">W. Boeglin</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Boer%2C+M">M. Boer</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Camsonne%2C+A">A. Camsonne</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chen%2C+J">J. Chen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dusa%2C+S+C">S. Covrig Dusa</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Deconinck%2C+W">W. Deconinck</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Defurne%2C+M">M. Defurne</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Delcarro%2C+F">F. Delcarro</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Diefenthaler%2C+M">M. Diefenthaler</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Diehl%2C+S">S. Diehl</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Elaasar%2C+M">M. Elaasar</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Fanelli%2C+C">C. Fanelli</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Fegan%2C+S">S. Fegan</a> , et al. (37 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2008.10768v2-abstract-short" style="display: inline;"> The proposed measurement is a dedicated study of the exclusive electroproduction process,1H(e,e&#39;p)pi0, in the backward-angle regime (u-channel process) above the resonance region. The produced pi0 is emitted 180 degrees opposite to the virtual-photon momentum. This study also aims to apply the well-known Rosenbluth separation technique that provides the model-independent differential cross-section&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2008.10768v2-abstract-full').style.display = 'inline'; document.getElementById('2008.10768v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2008.10768v2-abstract-full" style="display: none;"> The proposed measurement is a dedicated study of the exclusive electroproduction process,1H(e,e&#39;p)pi0, in the backward-angle regime (u-channel process) above the resonance region. The produced pi0 is emitted 180 degrees opposite to the virtual-photon momentum. This study also aims to apply the well-known Rosenbluth separation technique that provides the model-independent differential cross-sections at the never explored u-channel kinematics region. Currently, the &#34;soft-hard transition&#34; in u-channel meson production remains an interesting and unexplored subject. The available theoretical frameworks offer competing interpretations for the observed backward-angle cross section peaks. In a &#34;soft&#34; hadronic Regge exchange description, the backward meson production comes from the interference between nucleon exchange and the meson produced via re-scattering within the nucleon. Whereas in the &#34;hard&#34; GPD-like backward collinear factorization regime, the scattering amplitude factorizes into a hard subprocess amplitude and baryon to meson transition distribution amplitudes (TDAs), otherwise known as super skewed parton distributions (SuperSPDs). Both TDAs and SPDs are universal non-perturbative objects of nucleon structure accessible only through backward-angle kinematics. The separated cross sections:sigma_T,sigma_L and T/L ratio at Q2=2-6 GeV2, provide a direct test of two predictions from the TDA model. The magnitude and u-dependence of the separated cross sections also provide a direct connection to the re-scattering Regge picture. The extracted interaction radius (from u-dependence) at different Q2 can be used to study the soft-hard transition in the u-channel kinematics. The acquisition of these data will be an important step forward in validating the existence of a backward factorization scheme of the nucleon structure function and establishing its applicable kinematic range. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2008.10768v2-abstract-full').style.display = 'none'; document.getElementById('2008.10768v2-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 30 July, 2021; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 24 August, 2020; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> August 2020. </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2008.08958">arXiv:2008.08958</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2008.08958">pdf</a>, <a href="https://arxiv.org/ps/2008.08958">ps</a>, <a href="https://arxiv.org/format/2008.08958">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="High Energy Physics - Phenomenology">hep-ph</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Theory">nucl-th</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1103/PhysRevC.103.025205">10.1103/PhysRevC.103.025205 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Measurement of the Generalized Polarizabilities of the Proton at Intermediate $Q^2$ </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Fonvieille%2C+H">H. Fonvieille</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Beri%C4%8Di%C4%8D%2C+J">J. Beri膷i膷</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Correa%2C+L">L. Correa</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Benali%2C+M">M. Benali</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Achenbach%2C+P">P. Achenbach</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bernauer%2C+J+C">J. C. Bernauer</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Blomberg%2C+A">A. Blomberg</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=B%C3%B6hm%2C+R">R. B枚hm</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bosnar%2C+D">D. Bosnar</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Debenjak%2C+L">L. Debenjak</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Denig%2C+A">A. Denig</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Distler%2C+M+O">M. O. Distler</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Downie%2C+E+J">E. J. Downie</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Esser%2C+A">A. Esser</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Fri%C5%A1%C4%8Di%C4%87%2C+I">I. Fri拧膷i膰</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kegel%2C+S">S. Kegel</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kohl%2C+Y">Y. Kohl</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Makek%2C+M">M. Makek</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Merkel%2C+H">H. Merkel</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Middleton%2C+D+G">D. G. Middleton</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Mihovilovi%C4%8D%2C+M">M. Mihovilovi膷</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=M%C3%BCller%2C+U">U. M眉ller</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Nungesser%2C+L">L. Nungesser</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Paolone%2C+M">M. Paolone</a> , et al. (13 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2008.08958v4-abstract-short" style="display: inline;"> Background: Generalized polarizabilities (GPs) are important observables to describe the nucleon structure, and measurements of these observables are still scarce. Purpose: This paper presents details of a virtual Compton scattering (VCS) experiment, performed at the A1 setup at the Mainz Microtron by studying the $e p \to e p 纬$ reaction. The article focuses on selected aspects of the analysis. M&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2008.08958v4-abstract-full').style.display = 'inline'; document.getElementById('2008.08958v4-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2008.08958v4-abstract-full" style="display: none;"> Background: Generalized polarizabilities (GPs) are important observables to describe the nucleon structure, and measurements of these observables are still scarce. Purpose: This paper presents details of a virtual Compton scattering (VCS) experiment, performed at the A1 setup at the Mainz Microtron by studying the $e p \to e p 纬$ reaction. The article focuses on selected aspects of the analysis. Method: The experiment extracted the $P_{LL} -P_{TT} / 蔚$ and $P_{LT}$ structure functions, as well as the electric and magnetic GPs of the proton, at three new values of the four-momentum transfer squared $Q^2$: 0.10, 0.20 and 0.45 GeV$^2$. Results: We emphasize the importance of the calibration of experimental parameters. The behavior of the measured $e p \to e p 纬$ cross section is presented and compared to the theory. A detailed investigation of the polarizability fits reveals part of their complexity, in connection with the higher-order terms of the low-energy expansion. Conclusions: The presented aspects are elements which contribute to minimize the systematic uncertainties and improve the precision of the physics results. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2008.08958v4-abstract-full').style.display = 'none'; document.getElementById('2008.08958v4-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 11 February, 2021; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 20 August, 2020; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> August 2020. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">16 pages, 15 figures, Version 4, regular article to appear in Phys.Rev.C, more final version of some figures</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Phys. Rev. C 103, 025205 (2021) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2007.15081">arXiv:2007.15081</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2007.15081">pdf</a>, <a href="https://arxiv.org/format/2007.15081">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="High Energy Physics - Experiment">hep-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="High Energy Physics - Phenomenology">hep-ph</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1140/epja/s10050-021-00564-y">10.1140/epja/s10050-021-00564-y <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> An experimental program with high duty-cycle polarized and unpolarized positron beams at Jefferson Lab </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Accardi%2C+A">A. Accardi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Afanasev%2C+A">A. Afanasev</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Albayrak%2C+I">I. Albayrak</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ali%2C+S+F">S. F. Ali</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Amaryan%2C+M">M. Amaryan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Annand%2C+J+R+M">J. R. M. Annand</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Arrington%2C+J">J. Arrington</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Asaturyan%2C+A">A. Asaturyan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Atac%2C+H">H. Atac</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Avakian%2C+H">H. Avakian</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Averett%2C+T">T. Averett</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bai%2C+X">X. Bai</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barion%2C+L">L. Barion</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Battaglieri%2C+M">M. Battaglieri</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bellini%2C+V">V. Bellini</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Beminiwattha%2C+R">R. Beminiwattha</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Benmokhtar%2C+F">F. Benmokhtar</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Berdnikov%2C+V+V">V. V. Berdnikov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bernauer%2C+J+C">J. C. Bernauer</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bertone%2C+V">V. Bertone</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bianconi%2C+A">A. Bianconi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Biselli%2C+A">A. Biselli</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bisio%2C+P">P. Bisio</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Blunden%2C+P">P. Blunden</a> , et al. (205 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2007.15081v2-abstract-short" style="display: inline;"> Positron beams, both polarized and unpolarized, are identified as essential ingredients for the experimental programs at the next generation of lepton accelerators. In the context of the hadronic physics program at Jefferson Lab (JLab), positron beams are complementary, even essential, tools for a precise understanding of the electromagnetic structure of nucleons and nuclei, in both the elastic an&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2007.15081v2-abstract-full').style.display = 'inline'; document.getElementById('2007.15081v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2007.15081v2-abstract-full" style="display: none;"> Positron beams, both polarized and unpolarized, are identified as essential ingredients for the experimental programs at the next generation of lepton accelerators. In the context of the hadronic physics program at Jefferson Lab (JLab), positron beams are complementary, even essential, tools for a precise understanding of the electromagnetic structure of nucleons and nuclei, in both the elastic and deep-inelastic regimes. For instance, elastic scattering of polarized and unpolarized electrons and positrons from the nucleon enables a model independent determination of its electromagnetic form factors. Also, the deeply-virtual scattering of polarized and unpolarized electrons and positrons allows unambiguous separation of the different contributions to the cross section of the lepto-production of photons and of lepton-pairs, enabling an accurate determination of the nucleons and nuclei generalized parton distributions, and providing an access to the gravitational form factors. Furthermore, positron beams offer the possibility of alternative tests of the Standard Model of particle physics through the search of a dark photon, the precise measurement of electroweak couplings, and the investigation of charged lepton flavor violation. This document discusses the perspectives of an experimental program with high duty-cycle positron beams at JLab. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2007.15081v2-abstract-full').style.display = 'none'; document.getElementById('2007.15081v2-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 21 May, 2021; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 29 July, 2020; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> July 2020. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">18 pages, 7 figures This version superseeds the previous version which scientific content was decomposed into several more elaborated articles. All of these articles will be collected in the EPJ A Topical Issue about &#34;Positron beam and physics at Jefferson Lab (e+@Jlab)&#34;</span> </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2006.01361">arXiv:2006.01361</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2006.01361">pdf</a>, <a href="https://arxiv.org/format/2006.01361">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="High Energy Physics - Experiment">hep-ex</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1103/PhysRevC.102.065203">10.1103/PhysRevC.102.065203 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Photoproduction of $畏$ mesons off the proton for $1.2 &lt; E_纬&lt; 4.7$ GeV using CLAS at Jefferson Laboratory </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Hu%2C+T">T. Hu</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Akbar%2C+Z">Z. Akbar</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Crede%2C+V">V. Crede</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Adhikari%2C+K+P">K. P. Adhikari</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Adhikari%2C+S">S. Adhikari</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Amaryan%2C+M+J">M. J. Amaryan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Angelini%2C+G">G. Angelini</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Asryan%2C+G">G. Asryan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Atac%2C+H">H. Atac</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barion%2C+L">L. Barion</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Battaglieri%2C+M">M. Battaglieri</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bedlinskiy%2C+I">I. Bedlinskiy</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Benmokhtar%2C+F">F. Benmokhtar</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bianconi%2C+A">A. Bianconi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Biselli%2C+A+S">A. S. Biselli</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bossu%2C+F">F. Bossu</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Boiarinov%2C+S">S. Boiarinov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Briscoe%2C+W+J">W. J. Briscoe</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Brooks%2C+W+K">W. K. Brooks</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Carman%2C+D+S">D. S. Carman</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Carvajal%2C+J">J. Carvajal</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Celentano%2C+A">A. Celentano</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chatagnon%2C+P">P. Chatagnon</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chetry%2C+T">T. Chetry</a> , et al. (126 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2006.01361v3-abstract-short" style="display: inline;"> Photoproduction cross sections are reported for the reaction $纬p\to p畏$ using energy-tagged photons and the CLAS spectrometer at Jefferson Laboratory. The $畏$ mesons are detected in their dominant charged decay mode, $畏\to 蟺^+蟺^-蟺^0$, and results on differential cross sections are presented for incident photon energies between 1.2 and 4.7 GeV. These new $畏$ photoproduction data are consistent with&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2006.01361v3-abstract-full').style.display = 'inline'; document.getElementById('2006.01361v3-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2006.01361v3-abstract-full" style="display: none;"> Photoproduction cross sections are reported for the reaction $纬p\to p畏$ using energy-tagged photons and the CLAS spectrometer at Jefferson Laboratory. The $畏$ mesons are detected in their dominant charged decay mode, $畏\to 蟺^+蟺^-蟺^0$, and results on differential cross sections are presented for incident photon energies between 1.2 and 4.7 GeV. These new $畏$ photoproduction data are consistent with earlier CLAS results but extend the energy range beyond the nucleon resonance region into the Regge regime. The normalized angular distributions are also compared with the experimental results from several other experiments, and with predictions of $畏$ MAID\,2018 and the latest solution of the Bonn-Gatchina coupled-channel analysis. Differential cross sections $d蟽/dt$ are presented for incident photon energies $E_纬&gt; 2.9$ GeV ($W &gt; 2.5$ GeV), and compared with predictions which are based on Regge trajectories exchange in the $t$-channel (Regge models). The data confirm the expected dominance of $蟻$, $蠅$ vector-meson exchange in an analysis by the Joint Physics Analysis Center. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2006.01361v3-abstract-full').style.display = 'none'; document.getElementById('2006.01361v3-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 10 December, 2020; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 1 June, 2020; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> June 2020. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">24 pages, 22 figures</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Report number:</span> JLAB-PHY-20-3201 </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Phys. Rev. C 102, 065203 (2020) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2004.11221">arXiv:2004.11221</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2004.11221">pdf</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Theory">nucl-th</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1038/s41586-020-2021-6">10.1038/s41586-020-2021-6 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Probing the core of the strong nuclear interaction </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Schmidt%2C+A">A. Schmidt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Pybus%2C+J+R">J. R. Pybus</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Weiss%2C+R">R. Weiss</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Segarra%2C+E+P">E. P. Segarra</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hrnjic%2C+A">A. Hrnjic</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Denniston%2C+A">A. Denniston</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hen%2C+O">O. Hen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Piasetzky%2C+E">E. Piasetzky</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Weinstein%2C+L+B">L. B. Weinstein</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barnea%2C+N">N. Barnea</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Strikman%2C+M">M. Strikman</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Larionov%2C+A">A. Larionov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Higinbotham%2C+D">D. Higinbotham</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Adhikari%2C+S">S. Adhikari</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Amaryan%2C+M">M. Amaryan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Angelini%2C+G">G. Angelini</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Asryan%2C+G">G. Asryan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Atac%2C+H">H. Atac</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Avakian%2C+H">H. Avakian</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Baashen%2C+L">L. Baashen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barion%2C+L">L. Barion</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bashkanov%2C+M">M. Bashkanov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Battaglieri%2C+M">M. Battaglieri</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Beck%2C+A">A. Beck</a> , et al. (140 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2004.11221v2-abstract-short" style="display: inline;"> The strong nuclear interaction between nucleons (protons and neutrons) is the effective force that holds the atomic nucleus together. This force stems from fundamental interactions between quarks and gluons (the constituents of nucleons) that are described by the equations of Quantum Chromodynamics (QCD). However, as these equations cannot be solved directly, physicists resort to describing nuclea&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2004.11221v2-abstract-full').style.display = 'inline'; document.getElementById('2004.11221v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2004.11221v2-abstract-full" style="display: none;"> The strong nuclear interaction between nucleons (protons and neutrons) is the effective force that holds the atomic nucleus together. This force stems from fundamental interactions between quarks and gluons (the constituents of nucleons) that are described by the equations of Quantum Chromodynamics (QCD). However, as these equations cannot be solved directly, physicists resort to describing nuclear interactions using effective models that are well constrained at typical inter-nucleon distances in nuclei but not at shorter distances. This limits our ability to describe high-density nuclear matter such as in the cores of neutron stars. Here we use high-energy electron scattering measurements that isolate nucleon pairs in short-distance, high-momentum configurations thereby accessing a kinematical regime that has not been previously explored by experiments, corresponding to relative momenta above 400 MeV/c. As the relative momentum between two nucleons increases and their separation thereby decreases, we observe a transition from a spin-dependent tensor-force to a predominantly spin-independent scalar-force. These results demonstrate the power of using such measurements to study the nuclear interaction at short-distances and also support the use of point-like nucleons with two- and three-body effective interactions to describe nuclear systems up to densities several times higher than the central density of atomic nuclei. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2004.11221v2-abstract-full').style.display = 'none'; document.getElementById('2004.11221v2-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 27 October, 2020; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 23 April, 2020; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> April 2020. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">Total 26 pages, 13 figures. Main text: 8 pages, 3 figures. Methods section: 6 pages. Extended Data: 8 figures, 1 table. Supplementary Materials: 8 pages, 2 figures</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Nature vol. 578 pp. 540-544 (2020) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2001.07230">arXiv:2001.07230</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2001.07230">pdf</a>, <a href="https://arxiv.org/format/2001.07230">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Theory">nucl-th</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1103/PhysRevLett.124.212501">10.1103/PhysRevLett.124.212501 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Probing few-body nuclear dynamics via 3H and 3He (e,e&#39;p)pn cross-section measurements </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Cruz-Torres%2C+R">R. Cruz-Torres</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Nguyen%2C+D">D. Nguyen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hauenstein%2C+F">F. Hauenstein</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Schmidt%2C+A">A. Schmidt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Li%2C+S">S. Li</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Abrams%2C+D">D. Abrams</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Albataineh%2C+H">H. Albataineh</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Alsalmi%2C+S">S. Alsalmi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Androic%2C+D">D. Androic</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aniol%2C+K">K. Aniol</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Armstrong%2C+W">W. Armstrong</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Arrington%2C+J">J. Arrington</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Atac%2C+H">H. Atac</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Averett%2C+T">T. Averett</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bai%2C+X">X. Bai</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bane%2C+J">J. Bane</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barcus%2C+S">S. Barcus</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Beck%2C+A">A. Beck</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bellini%2C+V">V. Bellini</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Benmokhtar%2C+F">F. Benmokhtar</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhatt%2C+H">H. Bhatt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhetuwal%2C+D">D. Bhetuwal</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Biswas%2C+D">D. Biswas</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Blyth%2C+D">D. Blyth</a> , et al. (103 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="2001.07230v3-abstract-short" style="display: inline;"> We report the first measurement of the \eep three-body breakup reaction cross sections in helium-3 ($^3$He) and tritium ($^3$H) at large momentum transfer ($\langle Q^2 \rangle \approx 1.9$ (GeV/c)$^2$) and $x_B&gt;1$ kinematics, where the cross section should be sensitive to quasielastic (QE) scattering from single nucleons. The data cover missing momenta $40 \le p_{miss} \le 500$ MeV/c that, in the&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2001.07230v3-abstract-full').style.display = 'inline'; document.getElementById('2001.07230v3-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2001.07230v3-abstract-full" style="display: none;"> We report the first measurement of the \eep three-body breakup reaction cross sections in helium-3 ($^3$He) and tritium ($^3$H) at large momentum transfer ($\langle Q^2 \rangle \approx 1.9$ (GeV/c)$^2$) and $x_B&gt;1$ kinematics, where the cross section should be sensitive to quasielastic (QE) scattering from single nucleons. The data cover missing momenta $40 \le p_{miss} \le 500$ MeV/c that, in the QE limit with no rescattering, equals the initial momentum of the probed nucleon. The measured cross sections are compared with state-of-the-art ab-initio calculations. Overall good agreement, within $\pm20\%$, is observed between data and calculations for the full $p_{miss}$ range for $^3$H and for $100 \le p_{miss} \le 350$ MeV/c for $^3$He. Including the effects of rescattering of the outgoing nucleon improves agreement with the data at $p_{miss} &gt; 250$ MeV/c and suggests contributions from charge-exchange (SCX) rescattering. The isoscalar sum of $^3$He plus $^3$H, which is largely insensitive to SCX, is described by calculations to within the accuracy of the data over the entire $p_{miss}$ range. This validates current models of the ground state of the three-nucleon system up to very high initial nucleon momenta of $500$ MeV/c. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2001.07230v3-abstract-full').style.display = 'none'; document.getElementById('2001.07230v3-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 17 June, 2020; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 20 January, 2020; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> January 2020. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">Accepted for publication in PRL. 8 pages, 3 figures, and online supplementary materials</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Phys. Rev. Lett. 124, 212501 (2020) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1908.00949">arXiv:1908.00949</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1908.00949">pdf</a>, <a href="https://arxiv.org/format/1908.00949">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> </div> <p class="title is-5 mathjax"> Neutron DVCS Measurements with BONuS12 in CLAS12 </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Hattawy%2C+M">M. Hattawy</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Amaryan%2C+M">M. Amaryan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=B%C3%BCltmann%2C+S">S. B眉ltmann</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dodge%2C+G">G. Dodge</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dzbenski%2C+N">N. Dzbenski</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hyde%2C+C">C. Hyde</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kuhn%2C+S">S. Kuhn</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Payette%2C+D">D. Payette</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Poudel%2C+J">J. Poudel</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Weinstein%2C+L">L. Weinstein</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dupr%C3%A9%2C+R">R. Dupr茅</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Guidal%2C+M">M. Guidal</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Marchand%2C+D">D. Marchand</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Mu%C3%B1oz%2C+C">C. Mu帽oz</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Niccolai%2C+S">S. Niccolai</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Voutier%2C+E">E. Voutier</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hafidi%2C+K">K. Hafidi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Yi%2C+Z">Z. Yi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Chetry%2C+T">T. Chetry</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=El-Fassi%2C+L">L. El-Fassi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Baltzell%2C+N">N. Baltzell</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gavalian%2C+G">G. Gavalian</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Girod%2C+F+X">F. X. Girod</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Stepanyan%2C+S">S. Stepanyan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Albayrak%2C+I">I. Albayrak</a> , et al. (5 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="1908.00949v1-abstract-short" style="display: inline;"> The three-dimensional picture of quarks and gluons in the nucleon is set to be revealed through deeply virtual Compton scattering (DVCS). With the absence of a free neutron target, the deuterium target represents the simplest nucleus to be used to probe the internal 3D partonic structure of the neutron. We propose here to measure the beam spin asymmetry (BSA) in incoherent neutron DVCS together wi&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1908.00949v1-abstract-full').style.display = 'inline'; document.getElementById('1908.00949v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1908.00949v1-abstract-full" style="display: none;"> The three-dimensional picture of quarks and gluons in the nucleon is set to be revealed through deeply virtual Compton scattering (DVCS). With the absence of a free neutron target, the deuterium target represents the simplest nucleus to be used to probe the internal 3D partonic structure of the neutron. We propose here to measure the beam spin asymmetry (BSA) in incoherent neutron DVCS together with the approved E12-06-113 experiment (BONuS12) within the run group F, using the same beam time, simply with addition of beam polarization. The DVCS BSA on the quasi-free neutron will be measured in a wide range of kinematics by tagging the scattered electron and the real photon final state with the spectator proton. We will also measure BSA with all final state particles detected including the struck neutron. The proposed measurements is complementary to the approved CLAS12 experiment E12-11-003, which will also measure the quasi-free neutron DVCS by detecting the scattered neutron, but not the spectator proton. Indeed, besides providing more data for neutron DVCS, this experiment will allow a comparison of the measurement of the BSA of neutron DVCS from the approved E12-11-003 with the measurements using the two methods proposed herein. This comparison will help to understand the impact of nuclear effects, such as the final state interactions (FSI) and Fermi motion on the measurement of the neutron DVCS. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1908.00949v1-abstract-full').style.display = 'none'; document.getElementById('1908.00949v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 2 August, 2019; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> August 2019. </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1907.11974">arXiv:1907.11974</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1907.11974">pdf</a>, <a href="https://arxiv.org/format/1907.11974">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1103/PhysRevC.101.015208">10.1103/PhysRevC.101.015208 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Exclusive $\bm{蟺^{0}p}$ electroproduction off protons in the resonance region at photon virtualities 0.4~GeV$\bm{^{2}}$ $\bm{\leq~ Q^{2} \leq~1}$~GeV$\bm{^{2}}$ </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Markov%2C+N">N. Markov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Joo%2C+K">K. Joo</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Burkert%2C+V+D">V. D. Burkert</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Mokeev%2C+V+I">V. I. Mokeev</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Smith%2C+L+C">L. C. Smith</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ungaro%2C+M">M. Ungaro</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Adhikari%2C+S">S. Adhikari</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=~Amaryan%2C+M+J">M. J. ~Amaryan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Angelini%2C+G">G. Angelini</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=~Atac%2C+H">H. ~Atac</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=~Avakian%2C+H">H. ~Avakian</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=~Baltzell%2C+N+A">N. A. ~Baltzell</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barion%2C+L">L. Barion</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=~Battaglieri%2C+M">M. ~Battaglieri</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=~Bedlinskiy%2C+I">I. ~Bedlinskiy</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=~Bedlinskiy%2C+I">I. ~Bedlinskiy</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Benmokhtar%2C+F">F. Benmokhtar</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=~Biselli%2C+A+S">A. S. ~Biselli</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=~Boss%C3%B9%2C+F">F. ~Boss霉</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=~Boiarinov%2C+S">S. ~Boiarinov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=~Briscoe%2C+W+J">W. J. ~Briscoe</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=~Brooks%2C+W+K">W. K. ~Brooks</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=~Carman%2C+D+S">D. S. ~Carman</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=~Carvajal%2C+J+C">J. C. ~Carvajal</a> , et al. (99 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="1907.11974v1-abstract-short" style="display: inline;"> The exclusive electroproduction process $ep \rightarrow e&#39;p&#39;蟺^{0}$ was measured in the range of photon virtualities $Q^{2} = 0.4 - 1.0$~GeV$^{2}$ and the invariant mass range of the $p蟺^{0}$ system of $W = 1.1 - 1.8$~GeV. These kinematics are covered in exclusive $蟺^{0}$ electroproduction off the proton with nearly complete angular coverage in the $p蟺^{0}$ center-of-mass system and with high stati&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1907.11974v1-abstract-full').style.display = 'inline'; document.getElementById('1907.11974v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1907.11974v1-abstract-full" style="display: none;"> The exclusive electroproduction process $ep \rightarrow e&#39;p&#39;蟺^{0}$ was measured in the range of photon virtualities $Q^{2} = 0.4 - 1.0$~GeV$^{2}$ and the invariant mass range of the $p蟺^{0}$ system of $W = 1.1 - 1.8$~GeV. These kinematics are covered in exclusive $蟺^{0}$ electroproduction off the proton with nearly complete angular coverage in the $p蟺^{0}$ center-of-mass system and with high statistical accuracy. Nearly 36000 cross section points were measured, and the structure functions $蟽_T+蔚蟽_L$, $蟽_{LT}$, and $蟽_{TT}$, were extracted via fitting the $蠁_{蟺^{0}}$ dependence of the cross section. A Legendre polynomial expansion analysis demonstrates the sensitivity of our data to high-lying $N^*$ and $螖^{*}$ resonances with $M~&gt;~1.6$ GeV. As part of a broad effort to determine the electrocouplings of the $N^{*}$ and $螖^{*}$ resonances using both single- and double-pion electroproduction, this dataset is crucial for the reliable extraction of the high-lying resonance electrocouplings from the combined isospin analysis of the $N 蟺$ and $蟺^{+}蟺^{-} p$ channels. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1907.11974v1-abstract-full').style.display = 'none'; document.getElementById('1907.11974v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 27 July, 2019; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> July 2019. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">21 pages, 24 figures</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Phys. Rev. C 101, 015208 (2020) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1907.09954">arXiv:1907.09954</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1907.09954">pdf</a>, <a href="https://arxiv.org/ps/1907.09954">ps</a>, <a href="https://arxiv.org/format/1907.09954">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1103/PhysRevLett.123.192302">10.1103/PhysRevLett.123.192302 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> New Insight in the $Q^2$-Dependence of Proton Generalized Polarizabilities </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Beri%C4%8Di%C4%8D%2C+J">J. Beri膷i膷</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Correa%2C+L">L. Correa</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Benali%2C+M">M. Benali</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Achenbach%2C+P">P. Achenbach</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bernauer%2C+J+C">J. C. Bernauer</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Blomberg%2C+A">A. Blomberg</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=B%C3%B6hm%2C+R">R. B枚hm</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bosnar%2C+D">D. Bosnar</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Debenjak%2C+L">L. Debenjak</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Denig%2C+A">A. Denig</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Distler%2C+M+O">M. O. Distler</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Downie%2C+E+J">E. J. Downie</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Esser%2C+A">A. Esser</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Fonvieille%2C+H">H. Fonvieille</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Fri%C5%A1%C4%8Di%C4%87%2C+I">I. Fri拧膷i膰</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kegel%2C+S">S. Kegel</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kohl%2C+Y">Y. Kohl</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Makek%2C+M">M. Makek</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Merkel%2C+H">H. Merkel</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Middleton%2C+D+G">D. G. Middleton</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Mihovilovi%C4%8D%2C+M">M. Mihovilovi膷</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=M%C3%BCller%2C+U">U. M眉ller</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Nungesser%2C+L">L. Nungesser</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Paolone%2C+M">M. Paolone</a> , et al. (13 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="1907.09954v2-abstract-short" style="display: inline;"> Virtual Compton scattering on the proton has been investigated at three yet unexplored values of the four-momentum transfer $Q^2$: 0.10, 0.20 and 0.45 GeV$^2$, at the Mainz Microtron. Fits performed using either the low-energy theorem or dispersion relations allowed the extraction of the structure functions $P_{LL} -P_{TT} / 蔚$ and $P_{LT}$, as well as the electric and magnetic generalized polariz&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1907.09954v2-abstract-full').style.display = 'inline'; document.getElementById('1907.09954v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1907.09954v2-abstract-full" style="display: none;"> Virtual Compton scattering on the proton has been investigated at three yet unexplored values of the four-momentum transfer $Q^2$: 0.10, 0.20 and 0.45 GeV$^2$, at the Mainz Microtron. Fits performed using either the low-energy theorem or dispersion relations allowed the extraction of the structure functions $P_{LL} -P_{TT} / 蔚$ and $P_{LT}$, as well as the electric and magnetic generalized polarizabilities $伪_{E1}(Q^2)$ and $尾_{M1}(Q^2)$. These new results show a smooth and rapid fall-off of $伪_{E1}(Q^2)$, in contrast to previous measurements at $Q^2$ = 0.33 GeV$^2$, and provide for the first time a precise mapping of $尾_{M1}(Q^2)$ in the low-$Q^2$ region. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1907.09954v2-abstract-full').style.display = 'none'; document.getElementById('1907.09954v2-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 16 October, 2019; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 23 July, 2019; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> July 2019. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">5 pages, 1 figure .eps. Version accepted by PRL</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Phys. Rev. Lett. 123, 192302 (2019) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1902.06358">arXiv:1902.06358</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1902.06358">pdf</a>, <a href="https://arxiv.org/format/1902.06358">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Nuclear Experiment">nucl-ex</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="Nuclear Theory">nucl-th</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1016/j.physletb.2019.134890">10.1016/j.physletb.2019.134890 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Comparing proton momentum distributions in $A=2$ and 3 nuclei via $^2$H $^3$H and $^3$He $(e, e&#39;p)$ measurements </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Cruz-Torres%2C+R">R. Cruz-Torres</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Li%2C+S">S. Li</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hauenstein%2C+F">F. Hauenstein</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Schmidt%2C+A">A. Schmidt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Nguyen%2C+D">D. Nguyen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Abrams%2C+D">D. Abrams</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Albataineh%2C+H">H. Albataineh</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Alsalmi%2C+S">S. Alsalmi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Androic%2C+D">D. Androic</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Aniol%2C+K">K. Aniol</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Armstrong%2C+W">W. Armstrong</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Arrington%2C+J">J. Arrington</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Atac%2C+H">H. Atac</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Averett%2C+T">T. Averett</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gayoso%2C+C+A">C. Ayerbe Gayoso</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bai%2C+X">X. Bai</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bane%2C+J">J. Bane</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barcus%2C+S">S. Barcus</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Beck%2C+A">A. Beck</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bellini%2C+V">V. Bellini</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhatt%2C+H">H. Bhatt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bhetuwal%2C+D">D. Bhetuwal</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Biswas%2C+D">D. Biswas</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Blyth%2C+D">D. Blyth</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Boeglin%2C+W">W. Boeglin</a> , et al. (103 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="1902.06358v3-abstract-short" style="display: inline;"> We report the first measurement of the $(e,e&#39;p)$ reaction cross-section ratios for Helium-3 ($^3$He), Tritium ($^3$H), and Deuterium ($d$). The measurement covered a missing momentum range of $40 \le p_{miss} \le 550$ MeV$/c$, at large momentum transfer ($\langle Q^2 \rangle \approx 1.9$ (GeV$/c$)$^2$) and $x_B&gt;1$, which minimized contributions from non quasi-elastic (QE) reaction mechanisms. The&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1902.06358v3-abstract-full').style.display = 'inline'; document.getElementById('1902.06358v3-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1902.06358v3-abstract-full" style="display: none;"> We report the first measurement of the $(e,e&#39;p)$ reaction cross-section ratios for Helium-3 ($^3$He), Tritium ($^3$H), and Deuterium ($d$). The measurement covered a missing momentum range of $40 \le p_{miss} \le 550$ MeV$/c$, at large momentum transfer ($\langle Q^2 \rangle \approx 1.9$ (GeV$/c$)$^2$) and $x_B&gt;1$, which minimized contributions from non quasi-elastic (QE) reaction mechanisms. The data is compared with plane-wave impulse approximation (PWIA) calculations using realistic spectral functions and momentum distributions. The measured and PWIA-calculated cross-section ratios for $^3$He$/d$ and $^3$H$/d$ extend to just above the typical nucleon Fermi-momentum ($k_F \approx 250$ MeV$/c$) and differ from each other by $\sim 20\%$, while for $^3$He/$^3$H they agree within the measurement accuracy of about 3\%. At momenta above $k_F$, the measured $^3$He/$^3$H ratios differ from the calculation by $20\% - 50\%$. Final state interaction (FSI) calculations using the generalized Eikonal Approximation indicate that FSI should change the $^3$He/$^3$H cross-section ratio for this measurement by less than 5\%. If these calculations are correct, then the differences at large missing momenta between the $^3$He/$^3$H experimental and calculated ratios could be due to the underlying $NN$ interaction, and thus could provide new constraints on the previously loosely-constrained short-distance parts of the $NN$ interaction. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1902.06358v3-abstract-full').style.display = 'none'; document.getElementById('1902.06358v3-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 24 September, 2019; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 17 February, 2019; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> February 2019. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">8 pages, 3 figures (4 panels)</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Report number:</span> JLAB-PHY-19-2893; LA-UR-18-31091 </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Physics Letters B 797 (2019) 134890 </p> </li> </ol> <nav class="pagination is-small is-centered breathe-horizontal" role="navigation" aria-label="pagination"> <a href="" class="pagination-previous is-invisible">Previous </a> <a href="/search/?searchtype=author&amp;query=Gayoso%2C+C+A&amp;start=50" class="pagination-next" >Next </a> <ul class="pagination-list"> <li> <a href="/search/?searchtype=author&amp;query=Gayoso%2C+C+A&amp;start=0" class="pagination-link is-current" aria-label="Goto page 1">1 </a> </li> <li> <a href="/search/?searchtype=author&amp;query=Gayoso%2C+C+A&amp;start=50" class="pagination-link " aria-label="Page 2" aria-current="page">2 </a> 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