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href="/search/?searchtype=author&amp;query=Burkert%2C+V+D&amp;start=50" class="pagination-link " aria-label="Page 2" aria-current="page">2 </a> </li> <li> <a href="/search/?searchtype=author&amp;query=Burkert%2C+V+D&amp;start=100" class="pagination-link " aria-label="Page 3" aria-current="page">3 </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/2411.15423">arXiv:2411.15423</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2411.15423">pdf</a>, <a href="https://arxiv.org/format/2411.15423">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"> Photoproduction of two charged pions off protons in the resonance region </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Sarantsev%2C+A+V">A. V. Sarantsev</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Klempt%2C+E">E. Klempt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Nikonov%2C+K+V">K. V. Nikonov</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=Burkert%2C+V+D">V. D. Burkert</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=Mokeev%2C+V">V. Mokeev</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="2411.15423v1-abstract-short" style="display: inline;"> Photoproduction of charged pions pairs off protons is studied within the invariant masses of the final state hadrons from 1.6 to 2.4 GeV at the Thomas Jefferson National Accelerator Facility with the CLAS detector. The data are included in the Bonn-Gatchina coupled-channel analysis and provide the information necessary to determine the branching fractions for most known nucleon and Delta resonance&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2411.15423v1-abstract-full').style.display = 'inline'; document.getElementById('2411.15423v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2411.15423v1-abstract-full" style="display: none;"> Photoproduction of charged pions pairs off protons is studied within the invariant masses of the final state hadrons from 1.6 to 2.4 GeV at the Thomas Jefferson National Accelerator Facility with the CLAS detector. The data are included in the Bonn-Gatchina coupled-channel analysis and provide the information necessary to determine the branching fractions for most known nucleon and Delta resonances. Branching ratios are obtained here from an event based likelihood fit. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2411.15423v1-abstract-full').style.display = 'none'; document.getElementById('2411.15423v1-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> 22 November, 2024; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> November 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">19 pages, 19 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/2409.08365">arXiv:2409.08365</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2409.08365">pdf</a>, <a href="https://arxiv.org/format/2409.08365">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 nucleon spin structure functions for 0.01&lt;$Q^2$&lt;1 GeV$^2$ using CLAS </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Deur%2C+A">A. Deur</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kuhn%2C+S+E">S. E. Kuhn</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ripani%2C+M">M. Ripani</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Zheng%2C+X">X. Zheng</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Acar%2C+A+G">A. G. Acar</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+K+P">K. P. Adhikari</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=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=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=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=Biselli%2C+A+S">A. S. Biselli</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Booth%2C+W+A">W. A. Booth</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=ossu%2C+F+B">F. B ossu</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=Boiarinov%2C+S">S. Boiarinov</a> , et al. (124 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="2409.08365v2-abstract-short" style="display: inline;"> The spin structure functions of the proton and the deuteron were measured during the EG4 experiment at Jefferson Lab in 2006. Data were collected for longitudinally polarized electron scattering off longitudinally polarized NH$_3$ and ND$_3$ targets, for $Q^2$ values as small as 0.012 and 0.02 GeV$^2$, respectively, using the CEBAF Large Acceptance Spectrometer (CLAS). This is the archival paper o&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2409.08365v2-abstract-full').style.display = 'inline'; document.getElementById('2409.08365v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2409.08365v2-abstract-full" style="display: none;"> The spin structure functions of the proton and the deuteron were measured during the EG4 experiment at Jefferson Lab in 2006. Data were collected for longitudinally polarized electron scattering off longitudinally polarized NH$_3$ and ND$_3$ targets, for $Q^2$ values as small as 0.012 and 0.02 GeV$^2$, respectively, using the CEBAF Large Acceptance Spectrometer (CLAS). This is the archival paper of the EG4 experiment that summaries the previously reported results of the polarized structure functions $g_1$, $A_1F_1$, and their moments $\overline 螕_1$, $\overline 纬_0$, and $\overline I_{TT}$, for both the proton and the deuteron. In addition, we report on new results on the neutron $g_1$ extracted by combining proton and deuteron data and correcting for Fermi smearing, and on the neutron moments $\overline 螕_1$, $\overline 纬_0$, and $\overline I_{TT}$ formed directly from those of the proton and the deuteron. Our data are in good agreement with the Gerasimov-Drell-Hearn sum rule for the proton, deuteron, and neutron. Furthermore, the isovector combination was formed for $g_1$ and the Bjorken integral $\overline 螕_1^{p-n}$, and compared to available theoretical predictions. All of our results provide for the first time extensive tests of spin observable predictions from chiral effective field theory ($蠂$EFT) in a $Q^2$ range commensurate with the pion mass. They motivate further improvement in $蠂$EFT calculations from other approaches such as the lattice gauge method. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2409.08365v2-abstract-full').style.display = 'none'; document.getElementById('2409.08365v2-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 January, 2025; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 12 September, 2024; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> September 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">33 pages. 26 figures. Data table provided as supplementary material (30 pages latex and csv tables)</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Report number:</span> JLAB-PHY-24-4184, DOE/OR/23177-7672 </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2406.15539">arXiv:2406.15539</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2406.15539">pdf</a>, <a href="https://arxiv.org/format/2406.15539">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> <p class="title is-5 mathjax"> First Measurement of Deeply Virtual Compton Scattering on the Neutron with Detection of the Active Neutron </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=CLAS+Collaboration"> CLAS Collaboration</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hobart%2C+A">A. Hobart</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=%C4%8Cui%C4%87%2C+M">M. 膶ui膰</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kumeri%C4%8Dki%2C+K">K. Kumeri膷ki</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=Alvarado%2C+J+S">J. S. Alvarado</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=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=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=Biselli%2C+A+S">A. S. Biselli</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=Bondi%2C+M">M. Bondi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Booth%2C+W+A">W. A. Booth</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=Brinkmann%2C+K+-">K. -Th. Brinkmann</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Briscoe%2C+W+J">W. J. Briscoe</a> , et al. (124 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="2406.15539v2-abstract-short" style="display: inline;"> Measuring Deeply Virtual Compton Scattering on the neutron is one of the necessary steps to understand the structure of the nucleon in terms of Generalized Parton Distributions (GPDs). Neutron targets play a complementary role to transversely polarized proton targets in the determination of the GPD $E$. This poorly known and poorly constrained GPD is essential to obtain the contribution of the qua&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2406.15539v2-abstract-full').style.display = 'inline'; document.getElementById('2406.15539v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2406.15539v2-abstract-full" style="display: none;"> Measuring Deeply Virtual Compton Scattering on the neutron is one of the necessary steps to understand the structure of the nucleon in terms of Generalized Parton Distributions (GPDs). Neutron targets play a complementary role to transversely polarized proton targets in the determination of the GPD $E$. This poorly known and poorly constrained GPD is essential to obtain the contribution of the quarks&#39; angular momentum to the spin of the nucleon. DVCS on the neutron was measured for the first time selecting the exclusive final state by detecting the neutron, using the Jefferson Lab longitudinally polarized electron beam, with energies up to 10.6 GeV, and the CLAS12 detector. The extracted beam-spin asymmetries, combined with DVCS observables measured on the proton, allow a clean quark-flavor separation of the imaginary parts of the GPDs $H$ and $E$. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2406.15539v2-abstract-full').style.display = 'none'; document.getElementById('2406.15539v2-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 June, 2024; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 21 June, 2024; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> June 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">7 pages, 6 figures</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Report number:</span> JLAB-PHY-24-4089 </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2310.11568">arXiv:2310.11568</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2310.11568">pdf</a>, <a href="https://arxiv.org/format/2310.11568">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 - Lattice">hep-lat</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> <p class="title is-5 mathjax"> The mechanical radius of the proton </p> <p class="authors"> <span class="search-hit">Authors:</span> <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=Elouadrhiri%2C+L">L. Elouadrhiri</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Girod%2C+F+X">F. X. Girod</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="2310.11568v2-abstract-short" style="display: inline;"> We present the first determination of the proton mechanical radius. The result was obtained by employing a novel theoretical approach that connects experimental data of deeply virtual Compton scattering with the spin = 2 interaction that is characteristic of gravity coupling with matter. We find that the proton mechanical radius is significantly smaller than its charge radius, consistent with the&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2310.11568v2-abstract-full').style.display = 'inline'; document.getElementById('2310.11568v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2310.11568v2-abstract-full" style="display: none;"> We present the first determination of the proton mechanical radius. The result was obtained by employing a novel theoretical approach that connects experimental data of deeply virtual Compton scattering with the spin = 2 interaction that is characteristic of gravity coupling with matter. We find that the proton mechanical radius is significantly smaller than its charge radius, consistent with the latest Lattice QCD computation. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2310.11568v2-abstract-full').style.display = 'none'; document.getElementById('2310.11568v2-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 November, 2023; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 17 October, 2023; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> October 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">4 pages, 3 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/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/2306.13777">arXiv:2306.13777</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2306.13777">pdf</a>, <a href="https://arxiv.org/format/2306.13777">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> </div> </div> <p class="title is-5 mathjax"> First Results on Nucleon Resonance Electroexcitation Amplitudes from $ep\to e&#39;蟺^+蟺^-p&#39;$ Cross Sections at $W$ from 1.4-1.7 GeV and $Q^2$ from 2.0-5.0 GeV$^2$ </p> <p class="authors"> <span class="search-hit">Authors:</span> <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=Achenbach%2C+P">P. Achenbach</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=Carman%2C+D+S">D. S. Carman</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gothe%2C+R+W">R. W. Gothe</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Blin%2C+A+N+H">A. N. Hiller Blin</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Isupov%2C+E+L">E. L. Isupov</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=Neupane%2C+K">K. Neupane</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Trivedi%2C+A">A. Trivedi</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="2306.13777v1-abstract-short" style="display: inline;"> The electroexcitation amplitudes or $纬_vpN^*$ electrocouplings of the $N(1440)1/2^+$, $N(1520)3/2^-$, and $螖(1600)3/2^+$ resonances were obtained for the first time from the $ep \to e&#39;蟺^+蟺^-p&#39;$ differential cross sections measured with the CLAS detector at Jefferson Lab within the range of invariant mass $W$ of the final state hadrons from 1.4--1.7 GeV for photon virtualities $Q^2$ from 2.0--5.0 G&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2306.13777v1-abstract-full').style.display = 'inline'; document.getElementById('2306.13777v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2306.13777v1-abstract-full" style="display: none;"> The electroexcitation amplitudes or $纬_vpN^*$ electrocouplings of the $N(1440)1/2^+$, $N(1520)3/2^-$, and $螖(1600)3/2^+$ resonances were obtained for the first time from the $ep \to e&#39;蟺^+蟺^-p&#39;$ differential cross sections measured with the CLAS detector at Jefferson Lab within the range of invariant mass $W$ of the final state hadrons from 1.4--1.7 GeV for photon virtualities $Q^2$ from 2.0--5.0 GeV$^2$. The electrocouplings were determined in independent fits of the $蟺^+蟺^-p$ cross sections within three overlapping $W$ intervals with a substantial contribution from each of the three resonances listed above. Consistent results on the electrocouplings extracted from the data in these $W$ intervals provide evidence for their reliable extraction. These studies extend information on the electrocouplings of the $N(1440)1/2^+$ and $N(1520)3/2^-$ available from this channel over a broader range of $Q^2$. The electrocouplings of the $螖(1600)3/2^+$, which decays preferentially into $蟺蟺N$ final states, have been determined for the first time. Our results provide further evidence for the structure of these resonances in terms of an interplay between the inner core of three dressed quarks and an external meson-baryon cloud. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2306.13777v1-abstract-full').style.display = 'none'; document.getElementById('2306.13777v1-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 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">27 pages, 18 figures, 9 tables</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Report number:</span> JLAB-PHY-23-3865 </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/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/2212.08980">arXiv:2212.08980</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2212.08980">pdf</a>, <a href="https://arxiv.org/format/2212.08980">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 - Lattice">hep-lat</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"> Nucleon resonances and transition form factors </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Burkert%2C+V+D">Volker D. Burkert</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="2212.08980v1-abstract-short" style="display: inline;"> This is a contribution to the review 50 Years of Quantum Chromodynamics edited by F. Gross and E. Klempt, to be published in Journal EPJC. This contribution reviews the nucleon resonance transition form factors determined from meson electro-production experiments at electron accelerator facilities, i.e. this contribution focuses on space-like transition form factors and amplitudes. Comparisons are&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2212.08980v1-abstract-full').style.display = 'inline'; document.getElementById('2212.08980v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2212.08980v1-abstract-full" style="display: none;"> This is a contribution to the review 50 Years of Quantum Chromodynamics edited by F. Gross and E. Klempt, to be published in Journal EPJC. This contribution reviews the nucleon resonance transition form factors determined from meson electro-production experiments at electron accelerator facilities, i.e. this contribution focuses on space-like transition form factors and amplitudes. Comparisons are made when available to LQCD and to approaches with traceable links to strong QCD and to advanced quark model calculations <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2212.08980v1-abstract-full').style.display = 'none'; document.getElementById('2212.08980v1-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 December, 2022; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> December 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">14 pages, 12 figures</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Report number:</span> JLAB-PHY-23-3736 </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2210.13691">arXiv:2210.13691</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2210.13691">pdf</a>, <a href="https://arxiv.org/format/2210.13691">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.130.142301">10.1103/PhysRevLett.130.142301 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> First Measurement of $螞$ Electroproduction off Nuclei in the Current and Target Fragmentation Regions </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Chetry%2C+T">T. Chetry</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=Brooks%2C+W+K">W. K. Brooks</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=Alaoui%2C+A+E">A. El Alaoui</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=Achenbach%2C+P">P. Achenbach</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=Akbar%2C+Z">Z. Akbar</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=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=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=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=Booth%2C+W+A">W. A. Booth</a> , et al. (129 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="2210.13691v2-abstract-short" style="display: inline;"> We report results of $螞$ hyperon production in semi-inclusive deep-inelastic scattering off deuterium, carbon, iron, and lead targets obtained with the CLAS detector and the Continuous Electron Beam Accelerator Facility 5.014~GeV electron beam. These results represent the first measurements of the $螞$ multiplicity ratio and transverse momentum broadening as a function of the energy fraction~($z$)&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2210.13691v2-abstract-full').style.display = 'inline'; document.getElementById('2210.13691v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2210.13691v2-abstract-full" style="display: none;"> We report results of $螞$ hyperon production in semi-inclusive deep-inelastic scattering off deuterium, carbon, iron, and lead targets obtained with the CLAS detector and the Continuous Electron Beam Accelerator Facility 5.014~GeV electron beam. These results represent the first measurements of the $螞$ multiplicity ratio and transverse momentum broadening as a function of the energy fraction~($z$) in the current and target fragmentation regions. The multiplicity ratio exhibits a strong suppression at high~$z$~and~an enhancement at~low~$z$. The measured transverse momentum broadening is an order of magnitude greater than that seen for light mesons. This indicates that the propagating entity interacts very strongly with the nuclear medium, which suggests that propagation of diquark configurations in the nuclear medium takes place at least part of the time, even at high~$z$. The trends of these results are qualitatively described by the Giessen Boltzmann-Uehling-Uhlenbeck transport model, particularly for the multiplicity ratios. These observations will potentially open a new era of studies of the structure of the nucleon as well as of strange baryons. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2210.13691v2-abstract-full').style.display = 'none'; document.getElementById('2210.13691v2-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 April, 2023; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 24 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">Comments:</span> <span class="has-text-grey-dark mathjax">14 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/2208.05086">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/2207.06682">arXiv:2207.06682</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2207.06682">pdf</a>, <a href="https://arxiv.org/format/2207.06682">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.129.182501">10.1103/PhysRevLett.129.182501 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Observation of azimuth-dependent suppression of hadron pairs in electron scattering off nuclei </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=Moran%2C+S">S. Moran</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=Alaoui%2C+A+E">A. El Alaoui</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hakobyan%2C+H">H. Hakobyan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Brooks%2C+W">W. Brooks</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=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=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=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. (120 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="2207.06682v2-abstract-short" style="display: inline;"> We present the first measurement of di-hadron angular correlations in electron-nucleus scattering. The data were taken with the CLAS detector and a 5.0 GeV electron beam incident on deuterium, carbon, iron, and lead targets. Relative to deuterium, the nuclear yields of charged-pion pairs show a strong suppression for azimuthally opposite pairs, no suppression for azimuthally nearby pairs, and an e&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2207.06682v2-abstract-full').style.display = 'inline'; document.getElementById('2207.06682v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2207.06682v2-abstract-full" style="display: none;"> We present the first measurement of di-hadron angular correlations in electron-nucleus scattering. The data were taken with the CLAS detector and a 5.0 GeV electron beam incident on deuterium, carbon, iron, and lead targets. Relative to deuterium, the nuclear yields of charged-pion pairs show a strong suppression for azimuthally opposite pairs, no suppression for azimuthally nearby pairs, and an enhancement of pairs with large invariant mass. These effects grow with increased nuclear size. The data are qualitatively described by the GiBUU model, which suggests that hadrons form near the nuclear surface and undergo multiple-scattering in nuclei. These results show that angular correlation studies can open a new way to elucidate how hadrons form and interact inside nuclei <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2207.06682v2-abstract-full').style.display = 'none'; document.getElementById('2207.06682v2-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 November, 2022; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 14 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">6 pages, 4 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. 129 (2022) 18, 182501 </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2203.16785">arXiv:2203.16785</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2203.16785">pdf</a>, <a href="https://arxiv.org/format/2203.16785">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.107.015201">10.1103/PhysRevC.107.015201 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Exclusive $蟺^{-}$ Electroproduction off the Neutron in Deuterium in the Resonance Region </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Tian%2C+Y">Y. Tian</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gothe%2C+R+W">R. W. Gothe</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=Hollis%2C+G">G. Hollis</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=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=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">A. 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=Bond%C3%AC%2C+M">M. Bond矛</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=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. (118 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="2203.16785v3-abstract-short" style="display: inline;"> New results for the exclusive and quasi-free cross sections off neutrons bound in deuterium $纬_vn(p) \rightarrow p蟺^{-} (p)$ are presented over a wide final state hadron angle range with a kinematic coverage of the invariant mass ($W$) up to 1.825 GeV and the virtual photon four-momentum transfer squared ($Q^{2}$) from 0.4 to 1.0 GeV$^2$. The exclusive structure functions were extracted and their&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2203.16785v3-abstract-full').style.display = 'inline'; document.getElementById('2203.16785v3-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2203.16785v3-abstract-full" style="display: none;"> New results for the exclusive and quasi-free cross sections off neutrons bound in deuterium $纬_vn(p) \rightarrow p蟺^{-} (p)$ are presented over a wide final state hadron angle range with a kinematic coverage of the invariant mass ($W$) up to 1.825 GeV and the virtual photon four-momentum transfer squared ($Q^{2}$) from 0.4 to 1.0 GeV$^2$. The exclusive structure functions were extracted and their Legendre moments were obtained. Final-state-interaction contributions have been kinematically separated from the extracted quasi-free cross sections off bound neutrons solely based on the analysis of the experimental data. These new results will serve as long-awaited input for phenomenological analyses to extract the $Q^{2}$ evolution of previously unavailable $n \to N^{*}$ electroexcitation amplitudes and to improve state-of-the-art models of neutrino scattering off nuclei by augmenting the already available results from free protons. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2203.16785v3-abstract-full').style.display = 'none'; document.getElementById('2203.16785v3-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 January, 2023; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 31 March, 2022; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> March 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">The author list has been updated</span> </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/2112.07732">arXiv:2112.07732</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2112.07732">pdf</a>, <a href="https://arxiv.org/ps/2112.07732">ps</a>, <a href="https://arxiv.org/format/2112.07732">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.L022201">10.1103/PhysRevC.105.L022201 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Polarized Structure Function $蟽_{LT&#39;}$ from $蟺^0 p$ Electroproduction Data in the Resonance Region at $0.4$ GeV$^2 &lt; Q^2 &lt; 1.0$ GeV$^2$ </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Isupov%2C+E+L">E. L. Isupov</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=Golubenko%2C+A+A">A. A. Golubenko</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=Markov%2C+N+S">N. S. Markov</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=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=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=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=Boss%C3%B9%2C+F">F. Boss霉</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=Bulumulla%2C+D">D. Bulumulla</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Capobianco%2C+R+A">R. A. Capobianco</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Carman%2C+D+S">D. S. Carman</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="2112.07732v1-abstract-short" style="display: inline;"> The first results on the $蟽_{LT&#39;}$ structure function in exclusive $蟺^0p$ electroproduction at invariant masses of the final state of 1.5 GeV $&lt;$ $W$ $&lt;$ 1.8 GeV and in the range of photon virtualities 0.4 GeV$^2 &lt; Q^2 &lt; 1.0$ GeV$^2$ were obtained from data on beam spin asymmetries and differential cross sections measured with the CLAS detector at Jefferson Lab. The Legendre moments determined fro&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2112.07732v1-abstract-full').style.display = 'inline'; document.getElementById('2112.07732v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2112.07732v1-abstract-full" style="display: none;"> The first results on the $蟽_{LT&#39;}$ structure function in exclusive $蟺^0p$ electroproduction at invariant masses of the final state of 1.5 GeV $&lt;$ $W$ $&lt;$ 1.8 GeV and in the range of photon virtualities 0.4 GeV$^2 &lt; Q^2 &lt; 1.0$ GeV$^2$ were obtained from data on beam spin asymmetries and differential cross sections measured with the CLAS detector at Jefferson Lab. The Legendre moments determined from the $蟽_{LT&#39;}$ structure function have demonstrated sensitivity to the contributions from the nucleon resonances in the second and third resonance regions. These new data on the beam spin asymmetries in $蟺^0p$ electroproduction extend the opportunities for the extraction of the nucleon resonance electroexcitation amplitudes in the mass range above 1.6 GeV. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2112.07732v1-abstract-full').style.display = 'none'; document.getElementById('2112.07732v1-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 December, 2021; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> December 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, 3 figures</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Report number:</span> JLAB-PHY-21-3552 </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2109.09951">arXiv:2109.09951</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2109.09951">pdf</a>, <a href="https://arxiv.org/format/2109.09951">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.105.015201">10.1103/PhysRevC.105.015201 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Measurement of charged-pion production in deep-inelastic scattering off nuclei with the CLAS detector </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Moran%2C+S">S. Moran</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dupre%2C+R">R. Dupre</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hakobyan%2C+H">H. Hakobyan</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=Brooks%2C+W+K">W. K. Brooks</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Borquez%2C+A">A. Borquez</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=Hafidi%2C+K">K. Hafidi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Mendez%2C+R">R. Mendez</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Mineeva%2C+T">T. Mineeva</a>, <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=Amaryan%2C+M+J">M. J. Amaryan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Angelini%2C+G">Giovanni Angelini</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=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">Fatiha 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> , et al. (119 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="2109.09951v2-abstract-short" style="display: inline;"> Background: Energetic quarks in nuclear DIS propagate through the nuclear medium. Processes that are believed to occur inside nuclei include quark energy loss through medium-stimulated gluon bremsstrahlung and intra-nuclear interactions of forming hadrons. More data are required to gain a more complete understanding of these effects. Purpose: To test the theoretical models of parton transport and&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2109.09951v2-abstract-full').style.display = 'inline'; document.getElementById('2109.09951v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2109.09951v2-abstract-full" style="display: none;"> Background: Energetic quarks in nuclear DIS propagate through the nuclear medium. Processes that are believed to occur inside nuclei include quark energy loss through medium-stimulated gluon bremsstrahlung and intra-nuclear interactions of forming hadrons. More data are required to gain a more complete understanding of these effects. Purpose: To test the theoretical models of parton transport and hadron formation, we compared their predictions for the nuclear and kinematic dependence of pion production in nuclei. Methods: We have measured charged-pion production in semi-inclusive DIS off D, C, Fe, and Pb using the CLAS detector and the CEBAF 5.014 GeV electron beam. We report results on the nuclear-to-deuterium multiplicity ratio for $蟺^{+}$ and $蟺^{-}$ as a function of energy transfer, four-momentum transfer, and pion energy fraction or transverse momentum - the first three-dimensional study of its kind. Results: The $蟺^{+}$ multiplicity ratio is found to depend strongly on the pion fractional energy $z$, and reaches minimum values of $0.67\pm0.03$, $0.43\pm0.02$, and $0.27\pm0.01$ for the C, Fe, and Pb targets, respectively. The $z$ dependences of the multiplicity ratios for $蟺^{+}$ and $蟺^{-}$ are equal within uncertainties for C and Fe targets but show differences at the level of 10$\%$ for the Pb-target data. The results are qualitatively described by the GiBUU transport model, as well as with a model based on hadron absorption, but are in tension with calculations based on nuclear fragmentation functions. Conclusions: These precise results will strongly constrain the kinematic and flavor dependence of nuclear effects in hadron production, probing an unexplored kinematic region. They will help to reveal how the nucleus reacts to a fast quark, thereby shedding light on its color structure, transport properties, and on the mechanisms of the hadronization process. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2109.09951v2-abstract-full').style.display = 'none'; document.getElementById('2109.09951v2-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> 13 January, 2022; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 21 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">22 pages, 5 figures, 12 tables</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Phys. Rev. C 105, 015201, (2022) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2108.03134">arXiv:2108.03134</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2108.03134">pdf</a>, <a href="https://arxiv.org/format/2108.03134">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> <p class="title is-5 mathjax"> Improved $螞p$ Elastic Scattering Cross Sections Between 0.9 and 2.0 GeV/c and Connections to the Neutron Star Equation of State </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=CLAS+Collaboration"> CLAS Collaboration</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Rowley%2C+J">J. Rowley</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Compton%2C+N">N. Compton</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Djalali%2C+C">C. Djalali</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hicks%2C+K">K. Hicks</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Price%2C+J">J. Price</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Zachariou%2C+N">N. Zachariou</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=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=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=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=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=Bulumulla%2C+D">D. Bulumulla</a> , et al. (121 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="2108.03134v1-abstract-short" style="display: inline;"> Strange matter is believed to exist in the cores of neutron stars based on simple kinematics. If this is true, then hyperon-nucleon interactions will play a significant part in the neutron star equation of state (EOS). Yet, compared to other elastic scattering processes, there is very little data on $螞$-$N$ scattering. This experiment utilized the CLAS detector to study the $螞p \rightarrow 螞p$ ela&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2108.03134v1-abstract-full').style.display = 'inline'; document.getElementById('2108.03134v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2108.03134v1-abstract-full" style="display: none;"> Strange matter is believed to exist in the cores of neutron stars based on simple kinematics. If this is true, then hyperon-nucleon interactions will play a significant part in the neutron star equation of state (EOS). Yet, compared to other elastic scattering processes, there is very little data on $螞$-$N$ scattering. This experiment utilized the CLAS detector to study the $螞p \rightarrow 螞p$ elastic scattering cross section in the incident $螞$ momentum range 0.9-2.0 GeV/c. This is the first data on this reaction in several decades. The new cross sections have significantly better accuracy and precision than the existing world data, and the techniques developed here can also be used in future experiments. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2108.03134v1-abstract-full').style.display = 'none'; document.getElementById('2108.03134v1-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 August, 2021; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> August 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">6 pages, 5 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/2107.08133">arXiv:2107.08133</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2107.08133">pdf</a>, <a href="https://arxiv.org/format/2107.08133">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/10.1016/j.physletb.2022.136878">10.1016/j.physletb.2022.136878 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Measurement of the Bjorken Sum at very low $Q^2$ </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Deur%2C+A">A. Deur</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=Kuhn%2C+S+E">S. E. Kuhn</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=Ripani%2C+M">M. Ripani</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Sulkosky%2C+V">V. Sulkosky</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Adhikari%2C+K">K. Adhikari</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=Burkert%2C+V+D">V. D. Burkert</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=De+Vita%2C+R">R. De Vita</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dodge%2C+G+E">G. E. Dodge</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=Garibaldi%2C+F">F. Garibaldi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kang%2C+H">H. Kang</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Osipenko%2C+M">M. Osipenko</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Singh%2C+J+T">J. T. Singh</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Slifer%2C+K">K. Slifer</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Zhang%2C+J">J. Zhang</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Zheng%2C+X">Xiaochao Zheng</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="2107.08133v2-abstract-short" style="display: inline;"> We present new data on the Bjorken sum $\overline 螕_1^{p-n}(Q^2)$ at 4-momentum transfer $ 0.021 \leq Q^2 \leq 0.496$ GeV$^2$. The data were obtained in two experiments performed at Jefferson Lab: EG4 on polarized protons and deuterons, and E97110 on polarized $^3$He from which neutron data were extracted. The data cover the domain where chiral effective field theory ($蠂$EFT), the leading effectiv&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2107.08133v2-abstract-full').style.display = 'inline'; document.getElementById('2107.08133v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2107.08133v2-abstract-full" style="display: none;"> We present new data on the Bjorken sum $\overline 螕_1^{p-n}(Q^2)$ at 4-momentum transfer $ 0.021 \leq Q^2 \leq 0.496$ GeV$^2$. The data were obtained in two experiments performed at Jefferson Lab: EG4 on polarized protons and deuterons, and E97110 on polarized $^3$He from which neutron data were extracted. The data cover the domain where chiral effective field theory ($蠂$EFT), the leading effective theory of the Strong Force at large distances, is expected to be applicable. We find that our data and the predictions from $蠂$EFT are only in marginal agreement. This is somewhat surprising as the contribution from the $螖(1232)$ resonance is suppressed in this observable, which should make it more reliably predicted by $蠂$EFT than quantities in which the $螖$ contribution is important. The data are also compared to a number of phenomenological models with various degrees of agreement. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2107.08133v2-abstract-full').style.display = 'none'; document.getElementById('2107.08133v2-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 January, 2022; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 16 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">Comments:</span> <span class="has-text-grey-dark mathjax">6 pages, 1 figure. Final version published in Phys. Lett. B</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Report number:</span> JLAB-PHY-21-3468 </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Phys. Lett. B 825 136878 (2022) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2104.02031">arXiv:2104.02031</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2104.02031">pdf</a>, <a href="https://arxiv.org/format/2104.02031">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 - Lattice">hep-lat</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"> Determination of shear forces inside the proton </p> <p class="authors"> <span class="search-hit">Authors:</span> <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=Elouadrhiri%2C+L">L. Elouadrhiri</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Girod%2C+F+X">F. X. Girod</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="2104.02031v2-abstract-short" style="display: inline;"> We report on the first determination of the shear forces quarks inside the proton from experimental data on deeply virtual Compton scattering. The maximum shear force of approximately 40 MeV/fm occurs near 0.6 fm from the proton center, indicating where confinement forces may be strongest. On the macroscopic scale of the earth surface, this force corresponds to the weight of a mass of about 650 kg&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2104.02031v2-abstract-full').style.display = 'inline'; document.getElementById('2104.02031v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2104.02031v2-abstract-full" style="display: none;"> We report on the first determination of the shear forces quarks inside the proton from experimental data on deeply virtual Compton scattering. The maximum shear force of approximately 40 MeV/fm occurs near 0.6 fm from the proton center, indicating where confinement forces may be strongest. On the macroscopic scale of the earth surface, this force corresponds to the weight of a mass of about 650 kg. The shear forces in the proton reverse direction at r = 0.45 fm from the center. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2104.02031v2-abstract-full').style.display = 'none'; document.getElementById('2104.02031v2-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 April, 2021; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 5 April, 2021; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> April 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">4 pages, 4 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/2103.03948">arXiv:2103.03948</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2103.03948">pdf</a>, <a href="https://arxiv.org/format/2103.03948">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/10.1140/epja/s10050-021-00462-3">10.1140/epja/s10050-021-00462-3 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Determination of two-photon exchange via $e^+p/e^-p$ Scattering with CLAS12 </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Bernauer%2C+J+C">Jan C. Bernauer</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Burkert%2C+V+D">Volker D. Burkert</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Cline%2C+E">Ethan Cline</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Schmidt%2C+A">Axel Schmidt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Sharabian%2C+Y">Youri Sharabian</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="2103.03948v1-abstract-short" style="display: inline;"> The proton elastic form factor ratio shows a discrepancy between measurements using the Rosenbluth technique in unpolarized beam and target experiments and measurements using polarization degrees of freedom. The proposed explanation of this discrepancy is uncorrected hard two-photon exchange (TPE), a type of radiative correction that is conventionally neglected. The effect size and agreement with&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2103.03948v1-abstract-full').style.display = 'inline'; document.getElementById('2103.03948v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2103.03948v1-abstract-full" style="display: none;"> The proton elastic form factor ratio shows a discrepancy between measurements using the Rosenbluth technique in unpolarized beam and target experiments and measurements using polarization degrees of freedom. The proposed explanation of this discrepancy is uncorrected hard two-photon exchange (TPE), a type of radiative correction that is conventionally neglected. The effect size and agreement with theoretical predictions has been tested recently by three experiments. While the results support the existence of a small two-photon exchange effect, they cannot establish that theoretical treatments are valid. At larger momentum transfers, theory remains untested. This proposal aims to measure two-photon exchange over an extended and so far largely untested $Q^2$ and $\varepsilon$ range with high precision using the {\tt CLAS12} experiment. Such data are crucial to clearly confirm or rule out TPE as the driver for the discrepancy as well as test several theoretical approaches, believed valid in different parts of the tested $Q^2$ range. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2103.03948v1-abstract-full').style.display = 'none'; document.getElementById('2103.03948v1-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 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, 8 figures. Submitted to EPJA Topical Issue &#34;An Experimental Program with Positron Beams at Jefferson Lab&#34;. arXiv admin note: substantial text overlap with arXiv:2007.15081, arXiv:1906.09419</span> </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2102.02658">arXiv:2102.02658</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2102.02658">pdf</a>, <a href="https://arxiv.org/format/2102.02658">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/10.1038/s41567-021-01198-z">10.1038/s41567-021-01198-z <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Measurement of the proton spin structure at long distances </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Zheng%2C+X">X. Zheng</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=Kang%2C+H">H. Kang</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kuhn%2C+S+E">S. E. Kuhn</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ripani%2C+M">M. Ripani</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Zhang%2C+J">J. Zhang</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=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=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=Boiarinov%2C+S">S. Boiarinov</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=Bossu%2C+F">F. Bossu</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=Briscoe%2C+W+J">W. J. Briscoe</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Brock%2C+J">J. Brock</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=Bulumulla%2C+D">D. Bulumulla</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="2102.02658v2-abstract-short" style="display: inline;"> Measuring the spin structure of protons and neutrons tests our understanding of how they arise from quarks and gluons, the fundamental building blocks of nuclear matter. At long distances the coupling constant of the strong interaction becomes large, requiring non-perturbative methods to calculate quantum chromodynamics processes, such as lattice gauge theory or effective field theories. Here we r&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2102.02658v2-abstract-full').style.display = 'inline'; document.getElementById('2102.02658v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2102.02658v2-abstract-full" style="display: none;"> Measuring the spin structure of protons and neutrons tests our understanding of how they arise from quarks and gluons, the fundamental building blocks of nuclear matter. At long distances the coupling constant of the strong interaction becomes large, requiring non-perturbative methods to calculate quantum chromodynamics processes, such as lattice gauge theory or effective field theories. Here we report proton spin structure measurements from scattering a polarized electron beam off polarized protons. The spin-dependent cross-sections were measured at large distances, corresponding to the region of low momentum transfer squared between 0.012 and 1.0 GeV$^2$. This kinematic range provides unique tests of chiral effective field theory predictions. Our results show that a complete description of the nucleon spin remains elusive, and call for further theoretical works, e.g. in lattice quantum chromodynamics. Finally, our data extrapolated to the photon point agree with the Gerasimov-Drell-Hearn sum rule, a fundamental prediction of quantum field theory that relates the anomalous magnetic moment of the proton to its integrated spin-dependent cross-sections. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2102.02658v2-abstract-full').style.display = 'none'; document.getElementById('2102.02658v2-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> 12 January, 2022; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 4 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">Published version. 10 pages, 5 figures. 20 pages of supplementary material (data tables and a figure)</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Report number:</span> JLAB-PHY-20-3251, DOE/OR/23177-5042 </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Nature Physics, vo. 17 736-741 (2021) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2010.09544">arXiv:2010.09544</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2010.09544">pdf</a>, <a href="https://arxiv.org/format/2010.09544">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.126.062002">10.1103/PhysRevLett.126.062002 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Beam spin asymmetry in semi-inclusive electroproduction of a hadron pair </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Mirazita%2C+M">M. Mirazita</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=Courtoy%2C+A">A. Courtoy</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Pisano%2C+S">S. Pisano</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=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=Benmokhtar%2C+F">Fatiha 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%27%2C+F">F. Bossu&#39;</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=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=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>, <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> , et al. (118 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="2010.09544v1-abstract-short" style="display: inline;"> A first measurement of the longitudinal beam spin asymmetry ALU in the semi-inclusive electroproduction of pairs of charged pions is reported. ALU is a higher-twist observable and offers the cleanest access to the nucleon twist-3 parton distribution function e(x). Data have been collected in the Hall-B at Jefferson Lab by impinging a 5.498 GeV electron beam on a liquid-hydrogen target, and reconst&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2010.09544v1-abstract-full').style.display = 'inline'; document.getElementById('2010.09544v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2010.09544v1-abstract-full" style="display: none;"> A first measurement of the longitudinal beam spin asymmetry ALU in the semi-inclusive electroproduction of pairs of charged pions is reported. ALU is a higher-twist observable and offers the cleanest access to the nucleon twist-3 parton distribution function e(x). Data have been collected in the Hall-B at Jefferson Lab by impinging a 5.498 GeV electron beam on a liquid-hydrogen target, and reconstructing the scattered electron and the pion pair with the CLAS detector. One-dimensional projections of the sin(phiR) moments of ALU are extracted for the kinematic variables of interest in the valence quark region. The understanding of di-hadron production is essential for the interpretation of observables in single hadron production in semi-inclusive DIS, and pioneering measurements of single spin asymmetries in di-hadron production open a new avenue in studies of QCD dynamics. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2010.09544v1-abstract-full').style.display = 'none'; document.getElementById('2010.09544v1-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 October, 2020; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> October 2020. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Phys. Rev. Lett. 126, 062002 (2021) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2007.15677">arXiv:2007.15677</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2007.15677">pdf</a>, <a href="https://arxiv.org/format/2007.15677">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/10.1103/PhysRevLett.125.182001">10.1103/PhysRevLett.125.182001 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Extraction of beam-spin asymmetries from the hard exclusive $蟺^{+}$ channel off protons in a wide range of kinematics </p> <p class="authors"> <span class="search-hit">Authors:</span> <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=Kim%2C+A">A. Kim</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=Kroll%2C+P">P. Kroll</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=Riser%2C+D">D. Riser</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=Tezgin%2C+K">K. Tezgin</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=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=Boss%60u%2C+F">F. Boss`u</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> , et al. (113 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="2007.15677v1-abstract-short" style="display: inline;"> We have measured beam-spin asymmetries to extract the $\sin蠁$ moment $A_{LU}^{\sin蠁}$ from the hard exclusive $\vec{e} p \to e^\prime n 蟺^+$ reaction above the resonance region, for the first time with nearly full coverage from forward to backward angles in the center-of-mass. The $A_{LU}^{\sin蠁}$ moment has been measured up to 6.6 GeV$^{2}$ in $-t$, covering the kinematic regimes of Generalized P&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2007.15677v1-abstract-full').style.display = 'inline'; document.getElementById('2007.15677v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2007.15677v1-abstract-full" style="display: none;"> We have measured beam-spin asymmetries to extract the $\sin蠁$ moment $A_{LU}^{\sin蠁}$ from the hard exclusive $\vec{e} p \to e^\prime n 蟺^+$ reaction above the resonance region, for the first time with nearly full coverage from forward to backward angles in the center-of-mass. The $A_{LU}^{\sin蠁}$ moment has been measured up to 6.6 GeV$^{2}$ in $-t$, covering the kinematic regimes of Generalized Parton Distributions (GPD) and baryon-to-meson Transition Distribution Amplitudes (TDA) at the same time. The experimental results in very forward kinematics demonstrate the sensitivity to chiral-odd and chiral-even GPDs. In very backward kinematics where the TDA framework is applicable, we found $A_{LU}^{\sin蠁}$ to be negative, while a sign change was observed near 90$^\circ$ in the center-of-mass. The unique results presented in this paper will provide critical constraints to establish reaction mechanisms that can help to further develop the GPD and TDA frameworks. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2007.15677v1-abstract-full').style.display = 'none'; document.getElementById('2007.15677v1-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, 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">Journal ref:</span> Phys. Rev. Lett. 125, 182001 (2020) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2006.06802">arXiv:2006.06802</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2006.06802">pdf</a>, <a href="https://arxiv.org/format/2006.06802">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 - Lattice">hep-lat</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> <p class="title is-5 mathjax"> QCD2019 Workshop Summary </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Brodsky%2C+S+J">S. J. Brodsky</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=Carman%2C+D+S">D. S. Carman</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=Cui%2C+Z+-">Z. -F. Cui</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=D%C3%B6ring%2C+M">M. D枚ring</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dosch%2C+H+G">H. G. Dosch</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Draayer%2C+J+P">J. P. Draayer</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Elouadrhiri%2C+L">L. Elouadrhiri</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=Blin%2C+A+N+H">A. N. Hiller Blin</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=Joo%2C+K">K. Joo</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kim%2C+H+C">H. C. Kim</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=Kuhn%2C+S+E">S. E. Kuhn</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Lu%2C+Y">Y. Lu</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Melnitchouk%2C+W">W. Melnitchouk</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Mezrag%2C+C">C. Mezrag</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=Qiu%2C+J+W">J. W. Qiu</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Radici%2C+M">M. Radici</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Richards%2C+D">D. Richards</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Roberts%2C+C+D">C. D. Roberts</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Rodr%C3%ADguez-Quintero%2C+J">J. Rodr铆guez-Quintero</a> , et al. (4 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="2006.06802v2-abstract-short" style="display: inline;"> The topical workshop {\it Strong QCD from Hadron Structure Experiments} took place at Jefferson Lab from Nov. 6-9, 2019. Impressive progress in relating hadron structure observables to the strong QCD mechanisms has been achieved from the {\it ab initio} QCD description of hadron structure in a diverse array of methods in order to expose emergent phenomena via quasi-particle formation. The wealth o&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2006.06802v2-abstract-full').style.display = 'inline'; document.getElementById('2006.06802v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2006.06802v2-abstract-full" style="display: none;"> The topical workshop {\it Strong QCD from Hadron Structure Experiments} took place at Jefferson Lab from Nov. 6-9, 2019. Impressive progress in relating hadron structure observables to the strong QCD mechanisms has been achieved from the {\it ab initio} QCD description of hadron structure in a diverse array of methods in order to expose emergent phenomena via quasi-particle formation. The wealth of experimental data and the advances in hadron structure theory make it possible to gain insight into strong interaction dynamics in the regime of large quark-gluon coupling (the strong QCD regime), which will address the most challenging problems of the Standard Model on the nature of the dominant part of hadron mass, quark-gluon confinement, and the emergence of the ground and excited state hadrons, as well as atomic nuclei, from QCD. This workshop aimed to develop plans and to facilitate the future synergistic efforts between experimentalists, phenomenologists, and theorists working on studies of hadron spectroscopy and structure with the goal to connect the properties of hadrons and atomic nuclei available from data to the strong QCD dynamics underlying their emergence from QCD. These results pave the way for a future breakthrough extension in the studies of QCD with an Electron-Ion Collider in the U.S. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2006.06802v2-abstract-full').style.display = 'none'; document.getElementById('2006.06802v2-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 July, 2020; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 11 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">Summary and outlook of the &#34;Strong QCD from Hadron Structure Experiment&#34; topical Workshop at Jefferson Lab, November 4-8, 2019, Newport News, VA, USA, 65 pages, 57 figures</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Report number:</span> JLAB-PHY-20-3204, DOE/OR/23177-4985, NJU-INP 015/20 </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/2004.13531">arXiv:2004.13531</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/2004.13531">pdf</a>, <a href="https://arxiv.org/format/2004.13531">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> </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.2020.135457">10.1016/j.physletb.2020.135457 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Evidence for the $N&#39;(1720)3/2^+$ Nucleon Resonance from Combined Studies of CLAS $蟺^+蟺^-p$ Photo- and Electroproduction Data </p> <p class="authors"> <span class="search-hit">Authors:</span> <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=Burkert%2C+V+D">V. D. Burkert</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=Elouadrhiri%2C+L">L. Elouadrhiri</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Golovatch%2C+E">E. Golovatch</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gothe%2C+R+W">R. W. Gothe</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hicks%2C+K">K. Hicks</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ishkhanov%2C+B+S">B. S. Ishkhanov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Isupov%2C+E+L">E. L. Isupov</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=Markov%2C+N">N. Markov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Pasyuk%2C+E">E. Pasyuk</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Trivedi%2C+A">A. Trivedi</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="2004.13531v1-abstract-short" style="display: inline;"> The analysis of the nine 1-fold differential cross sections for the $纬_{r,v} p \to 蟺^+蟺^-p$ photo- and electroproduction reactions obtained with the CLAS detector at Jefferson Laboratory was carried out with the goal to establish the contributing resonances in the mass range from 1.6~GeV to 1.8~GeV. In order to describe the photo- and electroproduction data with $Q^2$-independent resonance masses&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2004.13531v1-abstract-full').style.display = 'inline'; document.getElementById('2004.13531v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="2004.13531v1-abstract-full" style="display: none;"> The analysis of the nine 1-fold differential cross sections for the $纬_{r,v} p \to 蟺^+蟺^-p$ photo- and electroproduction reactions obtained with the CLAS detector at Jefferson Laboratory was carried out with the goal to establish the contributing resonances in the mass range from 1.6~GeV to 1.8~GeV. In order to describe the photo- and electroproduction data with $Q^2$-independent resonance masses and hadronic decay widths in the $Q^2$ range below 1.5~GeV$^2$, it was found that an $N&#39;(1720)3/2^+$ state is required in addition to the already well-established nucleon resonances. This work demonstrates that the combined studies of $蟺^+蟺^-p$ photo- and electroproduction data are vital for the observation of this resonance. The contributions from the $N&#39;(1720)3/2^+$ state and the already established $N(1720)3/2^+$ state with a mass of 1.745~GeV are well separated by their different hadronic decays to the $蟺螖$ and $蟻p$ final states and the different $Q^2$-evolution of their photo-/electroexcitation amplitudes. The $N&#39;(1720)3/2^+$ state is the first recently established baryon resonance for which the results on the $Q^2$-evolution of the photo-/electrocouplings have become available. These results are important for the exploration of the nature of the ``missing&#39;&#39; baryon resonances. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('2004.13531v1-abstract-full').style.display = 'none'; document.getElementById('2004.13531v1-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> 28 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">accepted for publication in Phys. Lett. B</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Report number:</span> JLAB-PHY-20-3187 </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/1912.11400">arXiv:1912.11400</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1912.11400">pdf</a>, <a href="https://arxiv.org/format/1912.11400">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 - Lattice">hep-lat</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"> N$^*$ Experiments and what they tell us about Strong QCD Physics </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Burkert%2C+V+D">Volker D. Burkert</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="1912.11400v1-abstract-short" style="display: inline;"> I give an overview on experimental studies of the spectrum and the structure of the excited states of the nucleon and what we can learn about their internal structure. One focus is on the efforts to obtain a more complete picture of the light-quark baryon excitation spectrum employing electromagnetic beams that will allow us to draw some conclusions on the symmetries underlying the spectrum. For t&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1912.11400v1-abstract-full').style.display = 'inline'; document.getElementById('1912.11400v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1912.11400v1-abstract-full" style="display: none;"> I give an overview on experimental studies of the spectrum and the structure of the excited states of the nucleon and what we can learn about their internal structure. One focus is on the efforts to obtain a more complete picture of the light-quark baryon excitation spectrum employing electromagnetic beams that will allow us to draw some conclusions on the symmetries underlying the spectrum. For the higher mass excitations, the full employment of coupled channel approaches is essential when searching for new excited states in the large amounts of data already accumulated in different channels involving a variety of polarization observables. The other focus is on the study of transition form factors and helicity amplitudes and their dependences on $Q^2$, especially on some of the more prominent resonances, especially $螖(1232)\frac{3}{2}^+$, $N(1440)\frac{1}{2}^+$, and negative parity states $N(1535)\frac{1}{2}^-$, and $N(1675)\frac{5}{2}^-$. These were obtained in pion and eta electroproduction experiments off proton targets and have already led to further insights in the active degrees-of-freedom as a function of the distance scale involved. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1912.11400v1-abstract-full').style.display = 'none'; document.getElementById('1912.11400v1-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 December, 2019; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> December 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">12 Pages, 18 figures. Invited talk given at the N*2019 conference at Bonn, Germany. arXiv admin note: text overlap with arXiv:1603.00919, arXiv:1801.10480</span> </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/1901.09709">arXiv:1901.09709</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1901.09709">pdf</a>, <a href="https://arxiv.org/ps/1901.09709">ps</a>, <a href="https://arxiv.org/format/1901.09709">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> </div> </div> <p class="title is-5 mathjax"> The nucleon resonance structure from exclusive $蟺^+蟺^-p$ photo-/electroproduction off protons </p> <p class="authors"> <span class="search-hit">Authors:</span> <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=Ishkhanov%2C+B+S">B. S. Ishkhanov</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="1901.09709v1-abstract-short" style="display: inline;"> The results on the photo- and electroexcitation amplitudes of most nucleon resonances in the mass range up to 2.0 GeV determined from the CLAS experimental data on exclusive $蟺^+蟺^-p$ photo-/electroproduction off protons in collaboration between the Jefferson Lab and Moscow State University are presented. The first and only available results on electroexcitation amplitudes from CLAS in a wide rang&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1901.09709v1-abstract-full').style.display = 'inline'; document.getElementById('1901.09709v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1901.09709v1-abstract-full" style="display: none;"> The results on the photo- and electroexcitation amplitudes of most nucleon resonances in the mass range up to 2.0 GeV determined from the CLAS experimental data on exclusive $蟺^+蟺^-p$ photo-/electroproduction off protons in collaboration between the Jefferson Lab and Moscow State University are presented. The first and only available results on electroexcitation amplitudes from CLAS in a wide range of photon virtualities $Q^2$ $&lt;$ 5.0 GeV$^2$ revealed the nucleon resonance structure as a complex interplay between the inner core of three dressed quarks and external meson-baryon cloud. These results shed light on the strong QCD dynamics which underlines the generation of excited nucleon states of different structural features from confined quarks and gluons. The future prospects of these studies in the new era of experiments with the CLAS12 detector, which started successfully in Spring of 2018, are outlined. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1901.09709v1-abstract-full').style.display = 'none'; document.getElementById('1901.09709v1-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 January, 2019; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> January 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">17 pages, 7 figures, 3 tables. arXiv admin note: substantial text overlap with arXiv:1801.09750</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Report number:</span> JLAB-PHY-19-2852, DOE/OR/23177-4627 </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1812.02106">arXiv:1812.02106</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1812.02106">pdf</a>, <a href="https://arxiv.org/format/1812.02106">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.122.162301">10.1103/PhysRevLett.122.162301 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> First Measurements of the Double-Polarization Observables $F$, $P$, and $H$ in $蠅$ Photoproduction off Transversely Polarized Protons in the $N^\ast$ Resonance Region </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Roy%2C+P">P. Roy</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Park%2C+S">S. Park</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=Anisovich%2C+A+V">A. V. Anisovich</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Klempt%2C+E">E. Klempt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Nikonov%2C+V+A">V. A. Nikonov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Sarantsev%2C+A+V">A. V. Sarantsev</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Wei%2C+N+C">N. C. Wei</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Huang%2C+F">F. Huang</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Nakayama%2C+K">K. Nakayama</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=Angelini%2C+G">G. Angelini</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=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=Biselli%2C+A+S">A. S. Biselli</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=Brock%2C+J">J. Brock</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=Burkert%2C+V+D">V. D. Burkert</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Cao%2C+F">F. Cao</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Carlin%2C+C">C. Carlin</a> , et al. (123 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="1812.02106v2-abstract-short" style="display: inline;"> First measurements of double-polarization observables in $蠅$ photoproduction off the proton are presented using transverse target polarization and data from the CEBAF Large Acceptance Spectrometer (CLAS) FROST experiment at Jefferson Lab. The beam-target asymmetry $F$ has been measured using circularly polarized, tagged photons in the energy range 1200 - 2700 MeV, and the beam-target asymmetries&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1812.02106v2-abstract-full').style.display = 'inline'; document.getElementById('1812.02106v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1812.02106v2-abstract-full" style="display: none;"> First measurements of double-polarization observables in $蠅$ photoproduction off the proton are presented using transverse target polarization and data from the CEBAF Large Acceptance Spectrometer (CLAS) FROST experiment at Jefferson Lab. The beam-target asymmetry $F$ has been measured using circularly polarized, tagged photons in the energy range 1200 - 2700 MeV, and the beam-target asymmetries $H$ and $P$ have been measured using linearly polarized tagged photons in the energy range 1200 - 2000 MeV. These measurements significantly increase the database on polarization observables. The results are included in two partial-wave analyses and reveal significant contributions from several nucleon ($N^\ast$) resonances. In particular, contributions from new $N^\ast$ resonances listed in the Review of Particle Properties are observed, which aid in reaching the goal of mapping out the nucleon resonance spectrum. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1812.02106v2-abstract-full').style.display = 'none'; document.getElementById('1812.02106v2-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 May, 2019; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 5 December, 2018; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> December 2018. </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">Two authors added, figures updated</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Report number:</span> JLAB-PHY-18-2879 </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Phys. Rev. Lett. 122, 162301 (2019) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1810.02110">arXiv:1810.02110</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1810.02110">pdf</a>, <a href="https://arxiv.org/format/1810.02110">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/10.1103/PhysRevC.98.045203">10.1103/PhysRevC.98.045203 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Measurement of Unpolarized and Polarized Cross Sections for Deeply Virtual Compton Scattering on the Proton at Jefferson Laboratory with CLAS </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Saylor%2C+N+H">N. Hirlinger Saylor</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Guegan%2C+B">B. Guegan</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=Elouadrhiri%2C+L">L. Elouadrhiri</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Garcon%2C+M">M. Garcon</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=Jo%2C+H+S">H. S. Jo</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=Niccolai%2C+S">S. Niccolai</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Stoler%2C+P">P. Stoler</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="1810.02110v1-abstract-short" style="display: inline;"> This paper reports the measurement of polarized and unpolarized cross sections for the ep -&gt; e&#39;p&#39; reaction, which is comprised of Deeply Virtual Compton Scattering (DVCS) and Bethe-Heitler (BH) processes, at an electron beam energy of 5.88 GeV at the Thomas Jefferson National Accelerator Facility using the Large Acceptance Spectrometer CLAS. The unpolarized cross sections and polarized cross secti&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1810.02110v1-abstract-full').style.display = 'inline'; document.getElementById('1810.02110v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1810.02110v1-abstract-full" style="display: none;"> This paper reports the measurement of polarized and unpolarized cross sections for the ep -&gt; e&#39;p&#39; reaction, which is comprised of Deeply Virtual Compton Scattering (DVCS) and Bethe-Heitler (BH) processes, at an electron beam energy of 5.88 GeV at the Thomas Jefferson National Accelerator Facility using the Large Acceptance Spectrometer CLAS. The unpolarized cross sections and polarized cross section differences have been measured over broad kinematics, 0.10 &lt; x_B &lt; 0.58, 1.0 &lt; Q^2 &lt; 4.8 GeV^2, and 0.09 &lt; -t &lt; 2.00 GeV^2. The results are found to be consistent with previous CLAS data, and these new data are discussed in the framework of the generalized parton distribution approach. Calculations with two widely used phenomenological models, denoted VGG and KMSC, are approximately compatible with the experimental results over a large portion of the kinematic range of the data. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1810.02110v1-abstract-full').style.display = 'none'; document.getElementById('1810.02110v1-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 October, 2018; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> October 2018. </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, 24 figures, Accepted for publication in PRC</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Phys. Rev. C 98, 045203 (2018) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1806.01767">arXiv:1806.01767</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1806.01767">pdf</a>, <a href="https://arxiv.org/format/1806.01767">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/10.1016/j.physletb.2018.10.013">10.1016/j.physletb.2018.10.013 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> First results on nucleon resonance photocouplings from the $纬p \to 蟺^+蟺^-p$ reaction </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=CLAS+Collaboration"> CLAS Collaboration</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Golovatch%2C+E">E. Golovatch</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=Carman%2C+D+S">D. S. Carman</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gothe%2C+R+W">R. W. Gothe</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hicks%2C+K">K. Hicks</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ishkhanov%2C+B+S">B. S. Ishkhanov</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=Pasyuk%2C+E">E. Pasyuk</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=Akbar%2C+Z">Z. Akbar</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=Avakian%2C+H">H. Avakian</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ball%2C+J">J. Ball</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=Biselli%2C+A+S">A. S. Biselli</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=Cao%2C+F">F. Cao</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. (105 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="1806.01767v2-abstract-short" style="display: inline;"> We report the first experimental measurements of the nine 1-fold differential cross sections for the $纬p \to 蟺^+蟺^-p$ reaction, obtained with the CLAS detector at Jefferson Laboratory. The measurements cover the invariant mass range of the final state hadrons from 1.6~GeV~$&lt;W&lt;$~2.0~GeV. For the first time the photocouplings of all prominent nucleon resonances in this mass range have been extracted&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1806.01767v2-abstract-full').style.display = 'inline'; document.getElementById('1806.01767v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1806.01767v2-abstract-full" style="display: none;"> We report the first experimental measurements of the nine 1-fold differential cross sections for the $纬p \to 蟺^+蟺^-p$ reaction, obtained with the CLAS detector at Jefferson Laboratory. The measurements cover the invariant mass range of the final state hadrons from 1.6~GeV~$&lt;W&lt;$~2.0~GeV. For the first time the photocouplings of all prominent nucleon resonances in this mass range have been extracted from this exclusive channel. Photoproduction of two charged pions is of particular importance for the evaluation of the photocouplings for the $螖(1620)1/2^-$, $螖(1700)3/2^-$, $N(1720)3/2^+$, and $螖(1905)5/2^+$ resonances, which have dominant decays into the $蟺蟺N$ final states rather than the more extensively studied single meson decay channels. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1806.01767v2-abstract-full').style.display = 'none'; document.getElementById('1806.01767v2-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 November, 2018; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 5 June, 2018; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> June 2018. </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1805.04561">arXiv:1805.04561</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1805.04561">pdf</a>, <a href="https://arxiv.org/format/1805.04561">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.98.045205">10.1103/PhysRevC.98.045205 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Beam-Target Helicity Asymmetry $E$ in $K^{0}螞$ and $K^{0}危^0$ Photoproduction on the Neutron </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=CLAS+Collaboration"> CLAS Collaboration</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ho%2C+D+H">D. H. Ho</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Schumacher%2C+R+A">R. A. Schumacher</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=Deur%2C+A">A. Deur</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Fleming%2C+J">J. Fleming</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hanretty%2C+C">C. Hanretty</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kageya%2C+T">T. Kageya</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Klein%2C+F+J">F. J. Klein</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Klempt%2C+E">E. Klempt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Lowry%2C+M+M">M. M. Lowry</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Lu%2C+H">H. Lu</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Nikonov%2C+V+A">V. A. Nikonov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Peng%2C+P">P. Peng</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Sandorfi%2C+A+M">A. M. Sandorfi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Sarantsev%2C+A+V">A. V. Sarantsev</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Strakovsky%2C+I+I">I. I. Strakovsky</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Walford%2C+N+K">N. K. Walford</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Wei%2C+X">X. Wei</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Workman%2C+R+L">R. L. Workman</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=Adikaram%2C+D">D. Adikaram</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=Ball%2C+J">J. Ball</a> , et al. (124 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="1805.04561v2-abstract-short" style="display: inline;"> We report the first measurements of the $E$ beam-target helicity asymmetry for the $\vec纬 \vec{n} \to K^{0}螞$, and $K^{0}危^{0}$ channels in the energy range 1.70$\leq W\leq$2.34 GeV. The CLAS system at Jefferson Lab uses a circularly polarized photon beam and a target consisting of longitudinally polarized solid molecular hydrogen deuteride with low background contamination for the measurements. T&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1805.04561v2-abstract-full').style.display = 'inline'; document.getElementById('1805.04561v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1805.04561v2-abstract-full" style="display: none;"> We report the first measurements of the $E$ beam-target helicity asymmetry for the $\vec纬 \vec{n} \to K^{0}螞$, and $K^{0}危^{0}$ channels in the energy range 1.70$\leq W\leq$2.34 GeV. The CLAS system at Jefferson Lab uses a circularly polarized photon beam and a target consisting of longitudinally polarized solid molecular hydrogen deuteride with low background contamination for the measurements. The multivariate analysis method boosted decision trees was used to isolate the reactions of interest. Comparisons with predictions from the KaonMAID, SAID, and Bonn-Gatchina models are presented. These results will help separate the isospin $I=0$ and $I=1$ photo-coupling transition amplitudes in pseudoscalar meson photoproduction. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1805.04561v2-abstract-full').style.display = 'none'; document.getElementById('1805.04561v2-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, 2018; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 11 May, 2018; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> May 2018. </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">14 pages, 9 figures; Revised to match published version</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Phys. Rev. C 98, 045205 (2018) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1804.05136">arXiv:1804.05136</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1804.05136">pdf</a>, <a href="https://arxiv.org/format/1804.05136">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.98.025203">10.1103/PhysRevC.98.025203 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Measurements of the $纬_{v} p \rightarrow p&#39; 蟺^{+} 蟺^{-}$ cross section with the CLAS detector for $0.4$ GeV$^{2}$ $&lt; Q^{2} &lt;$ $1.0$ GeV$^{2}$ and $1.3$ GeV $&lt; W &lt;$ $1.825$ GeV </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Fedotov%2C+G+V">G. V. Fedotov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Skorodumina%2C+I+A">Iu. A. Skorodumina</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=Gothe%2C+R+W">R. W. Gothe</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hicks%2C+K">K. Hicks</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=Collaboration%2C+t+C">the CLAS Collaboration</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="1804.05136v5-abstract-short" style="display: inline;"> New results on the single-differential and fully-integrated cross sections for the process $纬_{v} p \rightarrow p&#39; 蟺^{+} 蟺^{-}$ are presented. The experimental data were collected with the CLAS detector at Jefferson Laboratory. Measurements were carried out in the kinematic region of the reaction invariant mass $W$ from 1.3 to 1.825 GeV and the photon virtuality $Q^2$ from 0.4 to 1.0 GeV$^2$. The&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1804.05136v5-abstract-full').style.display = 'inline'; document.getElementById('1804.05136v5-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1804.05136v5-abstract-full" style="display: none;"> New results on the single-differential and fully-integrated cross sections for the process $纬_{v} p \rightarrow p&#39; 蟺^{+} 蟺^{-}$ are presented. The experimental data were collected with the CLAS detector at Jefferson Laboratory. Measurements were carried out in the kinematic region of the reaction invariant mass $W$ from 1.3 to 1.825 GeV and the photon virtuality $Q^2$ from 0.4 to 1.0 GeV$^2$. The cross sections were obtained in narrow $Q^{2}$ bins (0.05 GeV$^{2}$) with the smallest statistical uncertainties achieved in double-pion electroproduction experiments to date. The results were found to be in agreement with previously available data where they overlap. A preliminary interpretation of the extracted cross sections, which was based on a phenomenological meson-baryon reaction model, revealed substantial relative contributions from nucleon resonances. The data offer promising prospects to improve knowledge on the $Q^{2}$-evolution of the electrocouplings of most resonances with masses up to $\sim$1.8 GeV. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1804.05136v5-abstract-full').style.display = 'none'; document.getElementById('1804.05136v5-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 November, 2018; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 13 April, 2018; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> April 2018. </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">22 pages, 22 figures, will be sent to Phys. Rev. C</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Phys. Rev. C 98, 025203 (2018) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1803.05745">arXiv:1803.05745</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1803.05745">pdf</a>, <a href="https://arxiv.org/format/1803.05745">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/10.1063/1.5040195">10.1063/1.5040195 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Positrons at JLab - Advancing Nuclear Science in Hall B </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Burkert%2C+V+D">Volker D. Burkert</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="1803.05745v1-abstract-short" style="display: inline;"> In this talk I address two high impact physics programs that require the use of polarized and unpolarized positron beams in addition to using electron beams of the same energy. First, I address what will be gained from using positron beams in addition to electron beams in the extraction of the Compton Form Factors (CFFs) and generalized parton distributions (GPDs) from Deeply Virtual Compton Scatt&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1803.05745v1-abstract-full').style.display = 'inline'; document.getElementById('1803.05745v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1803.05745v1-abstract-full" style="display: none;"> In this talk I address two high impact physics programs that require the use of polarized and unpolarized positron beams in addition to using electron beams of the same energy. First, I address what will be gained from using positron beams in addition to electron beams in the extraction of the Compton Form Factors (CFFs) and generalized parton distributions (GPDs) from Deeply Virtual Compton Scattering (DVCS) on a proton target. As a second high impact science program I discuss an experimental scenario using unpolarized positrons to measure elastic scattering on protons in an effort to determine definitively the 2-photon exchange contributions in order to resolve a longstanding discrepancy in the determination of the proton&#39;s electric and magnetic form factors. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1803.05745v1-abstract-full').style.display = 'none'; document.getElementById('1803.05745v1-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 March, 2018; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> March 2018. </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">9 pages, 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/1801.10480">arXiv:1801.10480</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1801.10480">pdf</a>, <a href="https://arxiv.org/format/1801.10480">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/10.1007/s00601-018-1378-7">10.1007/s00601-018-1378-7 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> N* Experiments and their Impact on Strong QCD Physics </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Burkert%2C+V+D">Volker D. Burkert</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="1801.10480v2-abstract-short" style="display: inline;"> I give a brief overview of experimental studies of the spectrum and the structure of the excited states of the nucleon and what we learn about their internal structure. The focus is on the effort to obtain a more complete picture of the light-quark baryon excitation spectrum employing electromagnetic beams, and on the study of the transition form factors and helicity amplitudes and their dependenc&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1801.10480v2-abstract-full').style.display = 'inline'; document.getElementById('1801.10480v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1801.10480v2-abstract-full" style="display: none;"> I give a brief overview of experimental studies of the spectrum and the structure of the excited states of the nucleon and what we learn about their internal structure. The focus is on the effort to obtain a more complete picture of the light-quark baryon excitation spectrum employing electromagnetic beams, and on the study of the transition form factors and helicity amplitudes and their dependence on the magnitude of the photon virtuality $Q^2$, especially for some of the most prominent resonances. The results were obtained in pion and eta electroproduction experiments off proton targets. They strengthen the connection of experiment and new results from modeling sQCD in DSE and Light Cone SR approaches. They also point to the nature of these states as 3-quark excitations at the core. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1801.10480v2-abstract-full').style.display = 'none'; document.getElementById('1801.10480v2-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 March, 2018; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 29 January, 2018; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> January 2018. </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">Introductory talk presented at the International workshop N*2017, University of South Carolina, Columbia, USA; 17 pages, 12 figures. arXiv admin note: text overlap with arXiv:1603.00919</span> </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1712.10314">arXiv:1712.10314</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1712.10314">pdf</a>, <a href="https://arxiv.org/format/1712.10314">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> <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.98.015207">10.1103/PhysRevC.98.015207 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Exclusive photoproduction of $蟺^0$ up to large values of Mandelstam variables $s, t$ and $u$ with CLAS </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Kunkel%2C+M+C">M. C. Kunkel</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=32"> 32</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Amaryan%2C+1+M+J">18 M. J. Amaryan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=32"> 32</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Strakovsky%2C+I+I">I. I. Strakovsky</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ritman%2C+1+J">16 J. Ritman</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=3"> 3</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Goldstein%2C+1+G+R">18 G. R. Goldstein</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Adhikari%2C+4+K+P">43 K. P. Adhikari</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Adhikari%2C+2+S">28 S Adhikari</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Avakian%2C+1+H">13 H. Avakian</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ball%2C+3+J">39 J. Ball</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Balossino%2C+7+I">7 I. Balossino</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Barion%2C+1+L">19 L. Barion</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Battaglieri%2C+1+M">19 M. Battaglieri</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Batourine%2C+2+V">21 V. Batourine</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=39"> 39</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bedlinskiy%2C+2+I">27 I. Bedlinskiy</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Biselli%2C+2+A+S">25 A. S. Biselli</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=11"> 11</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Boiarinov%2C+5+S">5 S. Boiarinov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Briscoe%2C+3+W+J">39 W. J. Briscoe</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Brooks%2C+1+W+K">16 W. K. Brooks</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=40"> 40</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bueltmann%2C+3+S">39 S. Bueltmann</a> , et al. (147 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="1712.10314v1-abstract-short" style="display: inline;"> Exclusive photoproduction cross sections have been measured for the process $纬p \rightarrow p蟺^0(e^+e^-(纬))$ with the Dalitz decay final state using tagged photon energies in the range of $E_纬 = 1.275-5.425$ GeV. The complete angular distribution of the final state $蟺^0$, for the entire photon energy range up to large values of $t$ and $u$, has been measured for the first time. The data obtained s&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1712.10314v1-abstract-full').style.display = 'inline'; document.getElementById('1712.10314v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1712.10314v1-abstract-full" style="display: none;"> Exclusive photoproduction cross sections have been measured for the process $纬p \rightarrow p蟺^0(e^+e^-(纬))$ with the Dalitz decay final state using tagged photon energies in the range of $E_纬 = 1.275-5.425$ GeV. The complete angular distribution of the final state $蟺^0$, for the entire photon energy range up to large values of $t$ and $u$, has been measured for the first time. The data obtained show that the cross section $d蟽/dt$, at mid to large angles, decreases with energy as $s^{-6.89\pm 0.26} $. This is in agreement with the perturbative QCD quark counting rule prediction of $s^{-7} $. Paradoxically, the size of angular distribution of measured cross sections is greatly underestimated by the QCD based Generalized Parton Distribution mechanism at highest available invariant energy $s=11$ GeV$^2$. At the same time, the Regge exchange based models for $蟺^0$ photoproduction are more consistent with experimental data. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1712.10314v1-abstract-full').style.display = 'none'; document.getElementById('1712.10314v1-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> 29 December, 2017; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> December 2017. </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> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Phys. Rev. C 98, 015207 (2018) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1712.02184">arXiv:1712.02184</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1712.02184">pdf</a>, <a href="https://arxiv.org/ps/1712.02184">ps</a>, <a href="https://arxiv.org/format/1712.02184">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.97.025203">10.1103/PhysRevC.97.025203 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Double $K_S^0$ Photoproduction off the Proton at CLAS </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Chandavar%2C+S">S. Chandavar</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Goetz%2C+J+T">J. T. Goetz</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hicks%2C+K">K. Hicks</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Keller%2C+D">D. Keller</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kunkel%2C+M+C">M. C. Kunkel</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=Weygand%2C+D+P">D. P. Weygand</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=Akbar%2C+Z">Z. Akbar</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ball%2C+J">J. Ball</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Balossino%2C+I">I. Balossino</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=Biselli%2C+A+S">A. S. Biselli</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=Burkert%2C+V+D">V. D. Burkert</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Cao%2C+F">F. Cao</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=Celentano%2C+A">A. Celentano</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=Chetry%2C+T">T. Chetry</a> , et al. (102 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="1712.02184v1-abstract-short" style="display: inline;"> The $f_0$(1500) meson resonance is one of several contenders to have significant mixing with the lightest glueball. This resonance is well established from several previous experiments. Here we present the first photoproduction data for the $f_0$(1500) via decay into the $K_S^0 K_S^0$ channel using the CLAS detector. The reaction $纬p$ -&gt; $f_0 p$ -&gt; $K_S^0 K_S^0 p$, where J = 0, 2, was measured wit&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1712.02184v1-abstract-full').style.display = 'inline'; document.getElementById('1712.02184v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1712.02184v1-abstract-full" style="display: none;"> The $f_0$(1500) meson resonance is one of several contenders to have significant mixing with the lightest glueball. This resonance is well established from several previous experiments. Here we present the first photoproduction data for the $f_0$(1500) via decay into the $K_S^0 K_S^0$ channel using the CLAS detector. The reaction $纬p$ -&gt; $f_0 p$ -&gt; $K_S^0 K_S^0 p$, where J = 0, 2, was measured with photon energies from 2.7 to 5.1 GeV. A clear peak is seen at 1500 MeV in the background subtracted invariant mass spectra of the two kaons. This is enhanced if the measured 4-momentum transfer to the proton target is restricted to be less than 1.0 GeV2. By comparing data with simulations, it can be concluded that the peak at 1500 MeV is produced primarily at low t, which is consistent with a t-channel production mechanism. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1712.02184v1-abstract-full').style.display = 'none'; document.getElementById('1712.02184v1-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 December, 2017; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> December 2017. </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">12 pages, 12 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 97, 025203 (2018) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1711.05176">arXiv:1711.05176</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1711.05176">pdf</a>, <a href="https://arxiv.org/format/1711.05176">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.97.055202">10.1103/PhysRevC.97.055202 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Measurement of the beam asymmetry $危$ and the target asymmetry $T$ in the photoproduction of $蠅$ mesons off the proton using CLAS at Jefferson Laboratory </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Roy%2C+P">P. Roy</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=Park%2C+S">S. Park</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=Anisovich%2C+A+V">A. V. Anisovich</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Denisenko%2C+I">I. Denisenko</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Klempt%2C+E">E. Klempt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Nikonov%2C+V+A">V. A. Nikonov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Sarantsev%2C+A+V">A. V. Sarantsev</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=Pereira%2C+S+A">S. Anefalos Pereira</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ball%2C+J">J. Ball</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Balossino%2C+I">I. Balossino</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=Batourine%2C+V">V. Batourine</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=Biselli%2C+A+S">A. S. Biselli</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=Brock%2C+J">J. Brock</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=Burkert%2C+V+D">V. D. Burkert</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Carlin%2C+C">C. Carlin</a> , et al. (121 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="1711.05176v3-abstract-short" style="display: inline;"> The photoproduction of $蠅$ mesons off the proton has been studied in the reaction $纬p\to p\,蠅$ using the CEBAF Large Acceptance Spectrometer (CLAS) and the frozen-spin target (FROST) in Hall B at the Thomas Jefferson National Accelerator Facility. For the first time, the target asymmetry, $T$, has been measured in photoproduction from the decay $蠅\to蟺^+蟺^-蟺^0$, using a transversely-polarized targe&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1711.05176v3-abstract-full').style.display = 'inline'; document.getElementById('1711.05176v3-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1711.05176v3-abstract-full" style="display: none;"> The photoproduction of $蠅$ mesons off the proton has been studied in the reaction $纬p\to p\,蠅$ using the CEBAF Large Acceptance Spectrometer (CLAS) and the frozen-spin target (FROST) in Hall B at the Thomas Jefferson National Accelerator Facility. For the first time, the target asymmetry, $T$, has been measured in photoproduction from the decay $蠅\to蟺^+蟺^-蟺^0$, using a transversely-polarized target with energies ranging from just above the reaction threshold up to 2.8 GeV. Significant non-zero values are observed for these asymmetries, reaching about 30-40% in the third-resonance region. New measurements for the photon-beam asymmetry, $危$, are also presented, which agree well with previous CLAS results and extend the world database up to 2.1 GeV. These data and additional $蠅$-photoproduction observables from CLAS were included in a partial-wave analysis within the Bonn-Gatchina framework. Significant contributions from $s$-channel resonance production were found in addition to $t$-channel exchange processes. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1711.05176v3-abstract-full').style.display = 'none'; document.getElementById('1711.05176v3-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 May, 2018; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 14 November, 2017; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> November 2017. </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">15 pages, 10 figures, author list and references updated</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Report number:</span> JLAB-PHY-17-2583 </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Phys. Rev. C 97, 055202 (2018) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1711.01974">arXiv:1711.01974</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1711.01974">pdf</a>, <a href="https://arxiv.org/format/1711.01974">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.120.062501">10.1103/PhysRevLett.120.062501 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Measurement of the Q^2 Dependence of the Deuteron Spin Structure Function g_1 and its Moments at Low Q^2 with CLAS </p> <p class="authors"> <span class="search-hit">Authors:</span> <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=Deur%2C+A">A. Deur</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=Kang%2C+H">H. Kang</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kuhn%2C+S+E">S. E. Kuhn</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ripani%2C+M">M. Ripani</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Slifer%2C+K">K. Slifer</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Zheng%2C+X">X. Zheng</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=Akbar%2C+Z">Z. Akbar</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=Avakian%2C+H">H. Avakian</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ball%2C+J">J. Ball</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Balossino%2C+I">I. Balossino</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=Biselli%2C+A+S">A. S. Biselli</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=Briscoe%2C+W+J">W. J. Briscoe</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Brock%2C+J">J. Brock</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>, <a href="/search/nucl-ex?searchtype=author&amp;query=Cao%2C+F+T">F. Thanh Cao</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Carlin%2C+C">C. Carlin</a> , et al. (123 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="1711.01974v4-abstract-short" style="display: inline;"> We measured the $g_1$ spin structure function of the deuteron at low $Q^{2}$, where QCD can be approximated with chiral perturbation theory ($蠂$PT). The data cover the resonance region, up to an invariant mass of $W\approx1.9$~GeV. The generalized Gerasimov-Drell-Hearn sum, the moment $\bar螕_{1}^{d}$ and the integral $\bar{I}_纬^d$ related to the spin polarizability $纬_{0}^{d}$ are precisely determ&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1711.01974v4-abstract-full').style.display = 'inline'; document.getElementById('1711.01974v4-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1711.01974v4-abstract-full" style="display: none;"> We measured the $g_1$ spin structure function of the deuteron at low $Q^{2}$, where QCD can be approximated with chiral perturbation theory ($蠂$PT). The data cover the resonance region, up to an invariant mass of $W\approx1.9$~GeV. The generalized Gerasimov-Drell-Hearn sum, the moment $\bar螕_{1}^{d}$ and the integral $\bar{I}_纬^d$ related to the spin polarizability $纬_{0}^{d}$ are precisely determined down to a minimum $Q^2$ of 0.02~GeV$^2$ for the first time, about 2.5 times lower than that of previous data. We compare them to several $蠂$PT calculations and models. These results are the first in a program of benchmark measurements of polarization observables in the $蠂$PT domain. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1711.01974v4-abstract-full').style.display = 'none'; document.getElementById('1711.01974v4-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> 18 February, 2022; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 6 November, 2017; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> November 2017. </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">Version 1: version published in Phys. Rev. Lett. 6 pages, 3 figures. Supplementary material: data table for g1d and its moments (10 pages) V2: Figures labels changed and text slightly modified to clarify the exact nature of the measured moments V3: Corrected a typo page 5 for the theoretical value expected for deuteron GDH sum rule (agreement between measurement and expectation is improved)</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Report number:</span> JLAB-PHY-17-2585 </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Phys. Rev. Lett. 120, 062501 (2018) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1710.02549">arXiv:1710.02549</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1710.02549">pdf</a>, <a href="https://arxiv.org/format/1710.02549">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 - Lattice">hep-lat</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"> Roper resonance -- solution to the fifty year puzzle </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Burkert%2C+V+D">Volker D. Burkert</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Roberts%2C+C+D">Craig D. Roberts</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="1710.02549v1-abstract-short" style="display: inline;"> For half a century, the Roper resonance has defied understanding. Discovered in 1963, it appears to be an exact copy of the proton except that its mass is 50% greater. The mass is the first problem: it is difficult to explain with any theoretical tool that can validly be used to study quantum chromodynamics [QCD]. In the last decade, a new challenge has appeared, viz. precise information on the pr&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1710.02549v1-abstract-full').style.display = 'inline'; document.getElementById('1710.02549v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1710.02549v1-abstract-full" style="display: none;"> For half a century, the Roper resonance has defied understanding. Discovered in 1963, it appears to be an exact copy of the proton except that its mass is 50% greater. The mass is the first problem: it is difficult to explain with any theoretical tool that can validly be used to study quantum chromodynamics [QCD]. In the last decade, a new challenge has appeared, viz. precise information on the proton-to-Roper electroproduction transition form factors, reaching $Q^2\approx 4.5\,$GeV$^2$. This scale probes the domain within which hard valence-quark degrees-of-freedom could be expected to determine form factor behavior. Hence, with this new data the Roper resonance becomes a problem for strong-QCD [sQCD]. An explanation of how and where the Roper resonance fits into the emerging spectrum of hadrons cannot rest on a description of its mass alone. Instead, it must combine this with a detailed understanding of the Roper&#39;s structure and how that is revealed in the transition form factors. Furthermore, it must unify all this with a similarly complete picture of the proton. This is a prodigious task, but a ten-year international effort, drawing together experimentalists and theorists, has presented a solution to the puzzle. Namely, the Roper is at heart the proton&#39;s first radial excitation, consisting of a dressed-quark core augmented by a meson cloud that reduces the core mass by approximately 20% and materially alters its electroproduction form factors on $Q^2&lt;2m_N^2$, where $m_N$ is the proton&#39;s mass. We describe the experimental motivations and developments which enabled electroproduction data to be procured within a domain that is unambiguously the purview of sQCD, thereby providing a real challenge and opportunity for modern theory; and survey the developments in reaction models and QCD theory that have enabled this conclusion to be drawn about the nature of the Roper resonance. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1710.02549v1-abstract-full').style.display = 'none'; document.getElementById('1710.02549v1-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 October, 2017; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> October 2017. </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">23 pages, 19 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/1709.10054">arXiv:1709.10054</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1709.10054">pdf</a>, <a href="https://arxiv.org/ps/1709.10054">ps</a>, <a href="https://arxiv.org/format/1709.10054">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> </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.2018.06.014">10.1016/j.physletb.2018.06.014 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Semi-Inclusive $蟺_0$ target and beam-target asymmetries from 6 GeV electron scattering with CLAS </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Jawalkar%2C+S">S. Jawalkar</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Koirala%2C+S">S. Koirala</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=Bosted%2C+P">P. Bosted</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Griffioen%2C+K+A">K. A. Griffioen</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Keith%2C+C">C. Keith</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kuhn%2C+S+E">S. E. Kuhn</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=Adikaram%2C+D">D. Adikaram</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=Amaryan%2C+M+J">M. J. Amaryan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Pereira%2C+S+A">S. Anefalos Pereira</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=Ball%2C+J">J. Ball</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=Battaglieri%2C+M">M. Battaglieri</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Batourine%2C+V">V. Batourine</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=Biselli%2C+A+S">A. S. Biselli</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=Brock%2C+J">J. Brock</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=Bultmann%2C+S">S. Bultmann</a> , et al. (139 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="1709.10054v2-abstract-short" style="display: inline;"> We present precision measurements of the target and beam-target spin asymmetries from neutral pion electroproduction in deep-inelastic scattering (DIS) using the CEBAF Large Acceptance Spectrometer (CLAS) at Jefferson Lab. We scattered 6-GeV, longitudinally polarized electrons off longitudinally polarized protons in a cryogenic $^{14}$NH$_3$ target, and extracted double and single target spin asym&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1709.10054v2-abstract-full').style.display = 'inline'; document.getElementById('1709.10054v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1709.10054v2-abstract-full" style="display: none;"> We present precision measurements of the target and beam-target spin asymmetries from neutral pion electroproduction in deep-inelastic scattering (DIS) using the CEBAF Large Acceptance Spectrometer (CLAS) at Jefferson Lab. We scattered 6-GeV, longitudinally polarized electrons off longitudinally polarized protons in a cryogenic $^{14}$NH$_3$ target, and extracted double and single target spin asymmetries for $ep\rightarrow e^\prime蟺^0X$ in multidimensional bins in four-momentum transfer ($1.0&lt;Q^2&lt;3.2$ GeV$^2$), Bjorken-$x$ ($0.12&lt;x&lt;0.48$), hadron energy fraction ($0.4&lt;z&lt;0.7$), transverse pion momentum ($0&lt;P_T&lt;1.0$ GeV), and azimuthal angle $蠁_h$ between the lepton scattering and hadron production planes. We extracted asymmetries as a function of both $x$ and $P_T$, which provide access to transverse-momentum distributions of longitudinally polarized quarks. The double spin asymmetries depend weakly on $P_T$. The $\sin 2蠁_h$ moments are zero within uncertainties, which is consistent with the expected suppression of the Collins fragmentation function. The observed $\sin蠁_h$ moments suggest that quark gluon correlations are significant at large $x$. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1709.10054v2-abstract-full').style.display = 'none'; document.getElementById('1709.10054v2-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, 2018; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 21 September, 2017; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> September 2017. </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 preprint pages, 3 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/1708.02608">arXiv:1708.02608</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1708.02608">pdf</a>, <a href="https://arxiv.org/format/1708.02608">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.96.065209">10.1103/PhysRevC.96.065209 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Measurement of the helicity asymmetry $E$ in $蠅\to蟺^+蟺^-蟺^0$ photoproduction </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Akbar%2C+Z">Z. Akbar</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=Park%2C+S">S. Park</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=Anisovich%2C+A+V">A. V. Anisovich</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Denisenko%2C+I">I. Denisenko</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Klempt%2C+E">E. Klempt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Nikonov%2C+V+A">V. A. Nikonov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Sarantsev%2C+A+V">A. V. Sarantsev</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=Pereira%2C+S+A">S. Anefalos Pereira</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=Ball%2C+J">J. Ball</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=Batourine%2C+V">V. Batourine</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=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=Brock%2C+J">J. Brock</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=Burkert%2C+V+D">V. D. Burkert</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Cao%2C+F+T">F. T. Cao</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Carlin%2C+C">C. Carlin</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="1708.02608v2-abstract-short" style="display: inline;"> The double-polarization observable $E$ was studied for the reaction $纬p\to p蠅$ using the CEBAF Large Acceptance Spectrometer (CLAS) in Hall B at the Thomas Jefferson National Accelerator Facility and the longitudinally-polarized frozen-spin target (FROST). The observable was measured from the charged decay mode of the meson, $蠅\to蟺^+蟺^-蟺^0$, using a circularly-polarized tagged-photon beam with ene&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1708.02608v2-abstract-full').style.display = 'inline'; document.getElementById('1708.02608v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1708.02608v2-abstract-full" style="display: none;"> The double-polarization observable $E$ was studied for the reaction $纬p\to p蠅$ using the CEBAF Large Acceptance Spectrometer (CLAS) in Hall B at the Thomas Jefferson National Accelerator Facility and the longitudinally-polarized frozen-spin target (FROST). The observable was measured from the charged decay mode of the meson, $蠅\to蟺^+蟺^-蟺^0$, using a circularly-polarized tagged-photon beam with energies ranging from the $蠅$ threshold at 1.1 to 2.3 GeV. A partial-wave analysis within the Bonn-Gatchina framework found dominant contributions from the $3/2^+$ partial wave near threshold, which is identified with the sub-threshold $N(1720)\,3/2^+$ nucleon resonance. To describe the entire data set, which consisted of $蠅$ differential cross sections and a large variety of polarization observables, further contributions from other nucleon resonances were found to be necessary. With respect to non-resonant mechanisms, $蟺$ exchange in the $t$-channel was found to remain small across the analyzed energy range, while pomeron $t$-channel exchange gradually grew from the reaction threshold to dominate all other contributions above $W \approx 2$ GeV. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1708.02608v2-abstract-full').style.display = 'none'; document.getElementById('1708.02608v2-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> 3 January, 2018; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 8 August, 2017; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> August 2017. </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">12 pages, 8 figures</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Report number:</span> JLAB-PHY-17-2532 </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Phys. Rev. C 96, 065209 (2017) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1707.03361">arXiv:1707.03361</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1707.03361">pdf</a>, <a href="https://arxiv.org/format/1707.03361">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.119.202004">10.1103/PhysRevLett.119.202004 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> First Exclusive Measurement of Deeply Virtual Compton Scattering off $^4$He: Toward the 3D Tomography of Nuclei </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=Baltzell%2C+N+A">N. A. Baltzell</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=Hafidi%2C+K">K. Hafidi</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=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=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=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=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=Adikaram%2C+D">D. Adikaram</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=Amaryan%2C+M+J">M. J. Amaryan</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Pereira%2C+S+A">S. Anefalos Pereira</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=Avakian%2C+H">H. Avakian</a> , et al. (135 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="1707.03361v1-abstract-short" style="display: inline;"> We report on the first measurement of the beam-spin asymmetry in the exclusive process of coherent deeply virtual Compton scattering off a nucleus. The experiment used the 6 GeV electron beam from the CEBAF accelerator at Jefferson Lab incident on a pressurized $^4$He gaseous target placed in front of the CEBAF Large Acceptance Spectrometer (CLAS). The scattered electron was detected by CLAS and t&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1707.03361v1-abstract-full').style.display = 'inline'; document.getElementById('1707.03361v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1707.03361v1-abstract-full" style="display: none;"> We report on the first measurement of the beam-spin asymmetry in the exclusive process of coherent deeply virtual Compton scattering off a nucleus. The experiment used the 6 GeV electron beam from the CEBAF accelerator at Jefferson Lab incident on a pressurized $^4$He gaseous target placed in front of the CEBAF Large Acceptance Spectrometer (CLAS). The scattered electron was detected by CLAS and the photon by a dedicated electromagnetic calorimeter at forward angles. To ensure the exclusivity of the process, a specially designed radial time projection chamber was used to detect the recoiling $^4$He nuclei. We measured beam-spin asymmetries larger than those observed on the free proton in the same kinematic domain. From these, we were able to extract, in a model-independent way, the real and imaginary parts of the only $^4$He Compton form factor, $\cal H_A$. This first measurement of coherent deeply virtual Compton scattering on the $^4$He nucleus, with a fully exclusive final state via nuclear recoil tagging, leads the way toward 3D imaging of the partonic structure of nuclei. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1707.03361v1-abstract-full').style.display = 'none'; document.getElementById('1707.03361v1-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 July, 2017; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> July 2017. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Phys. Rev. Lett. 119, 202004 (2017) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1706.04280">arXiv:1706.04280</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1706.04280">pdf</a>, <a href="https://arxiv.org/format/1706.04280">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/10.1016/j.physletb.2017.08.015">10.1016/j.physletb.2017.08.015 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Photon beam asymmetry $危$ in the reaction $\vec纬 p \to p 蠅$ for $E_纬$ = 1.152 to 1.876 GeV </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=CLAS+Collaboration"> CLAS Collaboration</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Collins%2C+P">P. Collins</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ritchie%2C+B+G">B. G. Ritchie</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Dugger%2C+M">M. Dugger</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Klein%2C+F+J">F. J. Klein</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Anisovich%2C+A+V">A. V. Anisovich</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Klempt%2C+E">E. Klempt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Nikonov%2C+V+A">V. A. Nikonov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Sarantsev%2C+A">A. Sarantsev</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=Adikaram%2C+D">D. Adikaram</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=Pereira%2C+S+A">S. Anefalos Pereira</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=Ball%2C+J">J. Ball</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=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=Batourine%2C+V">V. Batourine</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=Biselli%2C+A+S">A. S. Biselli</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> , et al. (125 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="1706.04280v1-abstract-short" style="display: inline;"> Photon beam asymmetry $危$ measurements for $蠅$ photoproduction in the reaction $\vec纬 p \to 蠅p$ are reported for photon energies from 1.152 to 1.876 GeV. Data were taken using a linearly-polarized tagged photon beam, a cryogenic hydrogen target, and the CLAS spectrometer in Hall B at Jefferson Lab. The measurements obtained markedly increase the size of the database for this observable, extend cov&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1706.04280v1-abstract-full').style.display = 'inline'; document.getElementById('1706.04280v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1706.04280v1-abstract-full" style="display: none;"> Photon beam asymmetry $危$ measurements for $蠅$ photoproduction in the reaction $\vec纬 p \to 蠅p$ are reported for photon energies from 1.152 to 1.876 GeV. Data were taken using a linearly-polarized tagged photon beam, a cryogenic hydrogen target, and the CLAS spectrometer in Hall B at Jefferson Lab. The measurements obtained markedly increase the size of the database for this observable, extend coverage to higher energies, and resolve discrepancies in previously published data. Comparisons of these new results with predictions from a chiral-quark-based model and from a dynamical coupled-channels model indicate the importance of interferences between $t$-channel meson exchange and $s$- and $u$-channel contributions, underscoring sensitivity to the nucleon resonances included in those descriptions. Comparisons with the Bonn-Gatchina partial-wave analysis indicate the $危$ data reported here help to fix the magnitudes of the interference terms between the leading amplitudes in that calculation (Pomeron exchange and the resonant portion of the $J^P=3/2^+$ partial wave), as well as the resonant portions of the smaller partial waves with $J^P$= $1/2^-$, $3/2^-$, and $5/2^+$. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1706.04280v1-abstract-full').style.display = 'none'; document.getElementById('1706.04280v1-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> 13 June, 2017; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> June 2017. </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">10 pages, 3 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/1706.01963">arXiv:1706.01963</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1706.01963">pdf</a>, <a href="https://arxiv.org/ps/1706.01963">ps</a>, <a href="https://arxiv.org/format/1706.01963">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.96.035204">10.1103/PhysRevC.96.035204 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Differential Cross Section Measurements for $纬n\to蟺^-p$ Above the First Nucleon Resonance Region </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Mattione%2C+P+T">P. T. Mattione</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=Strakovsky%2C+I+I">I. I. Strakovsky</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Workman%2C+R+L">R. L. Workman</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kudryavtsev%2C+A+E">A. E. Kudryavtsev</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Svarc%2C+A">A. Svarc</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Tarasov%2C+V+E">V. E. Tarasov</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=Adikaram%2C+D">D. Adikaram</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=Pereira%2C+S+A">S. Anefalos Pereira</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ball%2C+J">J. Ball</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=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=Batourine%2C+V">V. Batourine</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=Biselli%2C+A+S">A. S. Biselli</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=Burkert%2C+V+D">V. D. Burkert</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Cao%2C+T">T. Cao</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=Charles%2C+G">G. Charles</a> , et al. (123 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="1706.01963v3-abstract-short" style="display: inline;"> The quasi-free $纬d\to蟺^{-}p(p)$ differential cross section has been measured with CLAS at photon beam energies $E_纬$ from 0.445 GeV to 2.510 GeV (corresponding to $W$ from 1.311 GeV to 2.366 GeV) for pion center-of-mass angles $\cos胃_蟺^{c.m.}$ from -0.72 to 0.92. A correction for final state interactions has been applied to this data to extract the $纬n\to蟺^-p$ differential cross sections. These cr&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1706.01963v3-abstract-full').style.display = 'inline'; document.getElementById('1706.01963v3-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1706.01963v3-abstract-full" style="display: none;"> The quasi-free $纬d\to蟺^{-}p(p)$ differential cross section has been measured with CLAS at photon beam energies $E_纬$ from 0.445 GeV to 2.510 GeV (corresponding to $W$ from 1.311 GeV to 2.366 GeV) for pion center-of-mass angles $\cos胃_蟺^{c.m.}$ from -0.72 to 0.92. A correction for final state interactions has been applied to this data to extract the $纬n\to蟺^-p$ differential cross sections. These cross sections are quoted in 8428 $(E_纬,\cos胃_蟺^{c.m.})$ bins, a factor of nearly three increase in the world statistics for this channel in this kinematic range. These new data help to constrain coupled-channel analysis fits used to disentangle the spectrum of $N^*$ resonances and extract their properties. Selected photon decay amplitudes $N^* \to 纬n$ at the resonance poles are determined for the first time and are reported here. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1706.01963v3-abstract-full').style.display = 'none'; document.getElementById('1706.01963v3-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 August, 2017; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 6 June, 2017; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> June 2017. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Report number:</span> JLAB-PHY-17-2478 </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Phys. Rev. C 96, 035204 (2017) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1705.04713">arXiv:1705.04713</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1705.04713">pdf</a>, <a href="https://arxiv.org/format/1705.04713">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 Beam-Target Helicity Asymmetry for $\vec纬 \vec{n} \rightarrow 蟺^- p$ in the {\bf{$N^*$} Resonance Region </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Ho%2C+D">D. Ho</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Peng%2C+P">P. Peng</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Bass%2C+C">C. Bass</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Collins%2C+P">P. Collins</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=Deur%2C+A">A. Deur</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Fleming%2C+J">J. Fleming</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hanretty%2C+C">C. Hanretty</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Kageya%2C+T">T. Kageya</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Khandaker%2C+M">M. Khandaker</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Klein%2C+F+J">F. J. Klein</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Klempt%2C+E">E. Klempt</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Laine%2C+V">V. Laine</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Lowry%2C+M+M">M. M. Lowry</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Lu%2C+H">H. Lu</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Nepali%2C+C">C. Nepali</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Nikonov%2C+V+A">V. A. Nikonov</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=O%27Connell%2C+T">T. O&#39;Connell</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Sandorfi%2C+A+M">A. M. Sandorfi</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Sarantsev%2C+A+V">A. V. Sarantsev</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Schumacher%2C+R+A">R. A. Schumacher</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Strakovsky%2C+I+I">I. I. Strakovsky</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=%C5%A0varc%2C+A">A. 艩varc</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Walford%2C+N+K">N. K. Walford</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Wei%2C+X">X. Wei</a> , et al. (118 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="1705.04713v1-abstract-short" style="display: inline;"> We report the first beam-target double-polarization asymmetries in the $纬+ n(p) \rightarrow 蟺^- + p(p)$ reaction spanning the nucleon resonance region from invariant mass $W$= $1500$ to $2300$ MeV. Circularly polarized photons and longitudinally polarized deuterons in $H\!D$ have been used with the CLAS detector at Jefferson Lab. The exclusive final state has been extracted using three very differ&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1705.04713v1-abstract-full').style.display = 'inline'; document.getElementById('1705.04713v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1705.04713v1-abstract-full" style="display: none;"> We report the first beam-target double-polarization asymmetries in the $纬+ n(p) \rightarrow 蟺^- + p(p)$ reaction spanning the nucleon resonance region from invariant mass $W$= $1500$ to $2300$ MeV. Circularly polarized photons and longitudinally polarized deuterons in $H\!D$ have been used with the CLAS detector at Jefferson Lab. The exclusive final state has been extracted using three very different analyses that show excellent agreement, and these have been used to deduce the {\it{E}} polarization observable for an effective neutron target. These results have been incorporated into new partial wave analyses, and have led to significant revisions for several $纬nN^*$ resonance photo-couplings. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1705.04713v1-abstract-full').style.display = 'none'; document.getElementById('1705.04713v1-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> 12 May, 2017; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> May 2017. </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, 5 figures; Physical Review Letters - in press</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Report number:</span> JLab-PHY-17-2438 </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1705.01901">arXiv:1705.01901</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1705.01901">pdf</a>, <a href="https://arxiv.org/ps/1705.01901">ps</a>, <a href="https://arxiv.org/format/1705.01901">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.96.025209">10.1103/PhysRevC.96.025209 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Measurements of $e p \to e&#39; 蟺^+ 蟺^- p&#39;$ Cross Sections with CLAS at $1.40 &lt; W &lt; 2.0$ GeV and $2.0 &lt; Q^2 &lt; 5.0$ GeV$^2$ </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Isupov%2C+E+L">E. L. Isupov</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=Carman%2C+D+S">D. S. Carman</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gothe%2C+R+W">R. W. Gothe</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Hicks%2C+K">K. Hicks</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Ishkhanov%2C+B+S">B. S. Ishkhanov</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=Collaboration%2C+t+C">the CLAS Collaboration</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="1705.01901v2-abstract-short" style="display: inline;"> This paper reports new exclusive cross sections for $e p \to e&#39; 蟺^+ 蟺^- p&#39;$ using the CLAS detector at Jefferson Laboratory. These results are presented for the first time at photon virtualities 2.0 GeV^2 &lt; Q^2 &lt; 5.0 GeV^2 in the center-of-mass energy range 1.4 GeV &lt; W &lt; 2.0 GeV, which covers a large part of the nucleon resonance region. Using a model developed for the phenomenological analysis of&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1705.01901v2-abstract-full').style.display = 'inline'; document.getElementById('1705.01901v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1705.01901v2-abstract-full" style="display: none;"> This paper reports new exclusive cross sections for $e p \to e&#39; 蟺^+ 蟺^- p&#39;$ using the CLAS detector at Jefferson Laboratory. These results are presented for the first time at photon virtualities 2.0 GeV^2 &lt; Q^2 &lt; 5.0 GeV^2 in the center-of-mass energy range 1.4 GeV &lt; W &lt; 2.0 GeV, which covers a large part of the nucleon resonance region. Using a model developed for the phenomenological analysis of electroproduction data, we see strong indications that the relative contributions from the resonant cross sections at W &lt; 1.74 GeV increase with $Q^2$. These data considerably extend the kinematic reach of previous measurements. Exclusive $e p \to e&#39; 蟺^+ 蟺^- p&#39;$ cross section measurements are of particular importance for the extraction of resonance electrocouplings in the mass range above 1.6 GeV. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1705.01901v2-abstract-full').style.display = 'none'; document.getElementById('1705.01901v2-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 May, 2017; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 4 May, 2017; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> May 2017. </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, 18 figures</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Report number:</span> JLAB-PHY-17-2453 </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Phys. Rev. C 96, 025209 (2017) </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1703.08081">arXiv:1703.08081</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1703.08081">pdf</a>, <a href="https://arxiv.org/format/1703.08081">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Data Analysis, Statistics and Probability">physics.data-an</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"> TWOPEG: An Event Generator for Charged Double Pion Electroproduction off Proton </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/nucl-ex?searchtype=author&amp;query=Skorodumina%2C+I">Iu. Skorodumina</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Fedotov%2C+G+V">G. V. Fedotov</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=Golovach%2C+E">E. Golovach</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Gothe%2C+R+W">R. W. Gothe</a>, <a href="/search/nucl-ex?searchtype=author&amp;query=Mokeev%2C+V">V. Mokeev</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="1703.08081v1-abstract-short" style="display: inline;"> The new event generator TWOPEG for the channel $e p \rightarrow e&#39; p&#39; 蟺^{+} 蟺^{-}$ has been developed. It uses an advanced method of event generation with weights and employs the five-fold differential structure functions from the recent versions of the JM model fit to all results on charged double pion photo- and electroproduction cross sections from CLAS (both published and preliminary). In the&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1703.08081v1-abstract-full').style.display = 'inline'; document.getElementById('1703.08081v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1703.08081v1-abstract-full" style="display: none;"> The new event generator TWOPEG for the channel $e p \rightarrow e&#39; p&#39; 蟺^{+} 蟺^{-}$ has been developed. It uses an advanced method of event generation with weights and employs the five-fold differential structure functions from the recent versions of the JM model fit to all results on charged double pion photo- and electroproduction cross sections from CLAS (both published and preliminary). In the areas covered by measured CLAS data, TWOPEG successfully reproduces the available integrated and single-differential double pion cross sections. To estimate the cross sections in the regions not covered by data, a specialized extrapolation procedure is applied. The EG currently covers a kinematical area in $Q^2$ starting from 0.0005 GeV$^2$ and in $W$ from the reaction threshold up to 4.5 GeV. TWOPEG allows to obtain the cross section values from the generated distributions and simulates radiative effects. The link to the code is provided. TWOPEG has already been used in CLAS data analyses and in PAC proposal preparations and is designed to be used during the CLAS12 era. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1703.08081v1-abstract-full').style.display = 'none'; document.getElementById('1703.08081v1-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, 2017; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> March 2017. </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">49 pages, 22 figures, Available at CLAS12 notes archive as CLAS12 Note 2017-001</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">ACM Class:</span> J.3.2 </p> </li> </ol> <nav class="pagination is-small 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