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Magnetic Materials Research Papers - Academia.edu

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class="u-borderBottom1 u-borderColorGrayLighter"><div class="clearfix u-pv7x u-mb0x js-work-card work_5999591" data-work_id="5999591" itemscope="itemscope" itemtype="https://schema.org/ScholarlyArticle"><div class="header"><div class="title u-fontSerif u-fs22 u-lineHeight1_3"><a class="u-tcGrayDarkest js-work-link" href="https://www.academia.edu/5999591/Magnetic_properties_and_magnetoresistance_effect_in_Co_Au_Ag_nano_structure_films_produced_by_pulse_electrodeposition">Magnetic properties and magnetoresistance effect in Co/Au, Ag nano-structure films produced by pulse electrodeposition</a></div></div><div class="u-pb4x u-mt3x"><div class="summary u-fs14 u-fw300 u-lineHeight1_5 u-tcGrayDarkest"><div class="summarized">We have investigated the relationship between the magnetism and the magnetoresistance effect in the Co/Au, Ag multilayer films with layers produced in the atomic level by pulse electrodeposition method. The magnetoresistance effect is... <a class="more_link u-tcGrayDark u-linkUnstyled" data-container=".work_5999591" data-show=".complete" data-hide=".summarized" data-more-link-behavior="true" href="#">more</a></div><div class="complete hidden">We have investigated the relationship between the magnetism and the magnetoresistance effect in the Co/Au, Ag multilayer films with layers produced in the atomic level by pulse electrodeposition method. The magnetoresistance effect is dependent on both the thickness of Co ferromagnetic layer and Ag,Au non-magnetic layers. The magnetization of these films shows the minimum value against the Ag and Au layer thickness. The Ag and Au layer thickness showing the maximum of MR ratio is not of necessary in <br />agreement with the Ag and Au layer thickness showing the minimum of magnetization. Antiparallel alignment of magnetic spin is a necessary but not sufficient condition in order to generate the GMR of multilayer films. For the Co/Au multilayer films, the Au layer thickness showing the minimum of the magnetization shifts to higher side of the Au layer thickness.</div></div></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue Button--sm js-bookmark-button" data-academia-share="Work/5999591" data-share-source="work_strip" data-spinner="small_white_hide_contents"><i class="fa fa-plus"></i><span class="work-strip-link-text u-ml1x" data-content="button_text">Bookmark</span></a></div></li><li class="InlineList-item"><div class="download"><a id="c17a904ed7279fe49fe0d3c9979edb8d" rel="nofollow" data-download="{&quot;attachment_id&quot;:40855786,&quot;asset_id&quot;:5999591,&quot;asset_type&quot;:&quot;Work&quot;,&quot;always_allow_download&quot;:false,&quot;track&quot;:null,&quot;button_location&quot;:&quot;work_strip&quot;,&quot;source&quot;:null,&quot;hide_modal&quot;:null}" class="Button Button--sm Button--inverseGreen js-download-button prompt_button doc_download" href="https://www.academia.edu/attachments/40855786/download_file?st=MTczMjQ2OTkxNiw4LjIyMi4yMDguMTQ2&s=work_strip"><i class="fa fa-arrow-circle-o-down fa-lg"></i><span class="u-textUppercase u-ml1x" data-content="button_text">Download</span></a></div></li><li class="InlineList-item"><ul class="InlineList InlineList--bordered u-ph0x"><li class="InlineList-item InlineList-item--bordered"><span class="InlineList-item-text">by&nbsp;<span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a class="u-tcGrayDark u-fw700" data-has-card-for-user="8179867" href="https://ucsd.academia.edu/ConradRizalPhD">Conrad Rizal, PhD</a><script data-card-contents-for-user="8179867" type="text/json">{"id":8179867,"first_name":"Conrad","last_name":"Rizal, PhD","domain_name":"ucsd","page_name":"ConradRizalPhD","display_name":"Conrad Rizal, PhD","profile_url":"https://ucsd.academia.edu/ConradRizalPhD?f_ri=7715","photo":"https://0.academia-photos.com/8179867/2818568/156384208/s65_conrad.rizal_phd.jpg"}</script></span></span></li><li class="js-paper-rank-work_5999591 InlineList-item InlineList-item--bordered hidden"><span class="js-paper-rank-view hidden u-tcGrayDark" data-paper-rank-work-id="5999591"><i class="u-m1x fa fa-bar-chart"></i><strong class="js-paper-rank"></strong></span><script>$(function() { new Works.PaperRankView({ workId: 5999591, container: ".js-paper-rank-work_5999591", }); 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The magnetoresistance effect is dependent on both the thickness of Co ferromagnetic layer and Ag,Au non-magnetic layers. The magnetization of these films shows the minimum value against the Ag and Au layer thickness. The Ag and Au layer thickness showing the maximum of MR ratio is not of necessary in\r\nagreement with the Ag and Au layer thickness showing the minimum of magnetization. Antiparallel alignment of magnetic spin is a necessary but not sufficient condition in order to generate the GMR of multilayer films. For the Co/Au multilayer films, the Au layer thickness showing the minimum of the magnetization shifts to higher side of the Au layer thickness.","downloadable_attachments":[{"id":40855786,"asset_id":5999591,"asset_type":"Work","always_allow_download":false}],"ordered_authors":[{"id":8179867,"first_name":"Conrad","last_name":"Rizal, PhD","domain_name":"ucsd","page_name":"ConradRizalPhD","display_name":"Conrad Rizal, PhD","profile_url":"https://ucsd.academia.edu/ConradRizalPhD?f_ri=7715","photo":"https://0.academia-photos.com/8179867/2818568/156384208/s65_conrad.rizal_phd.jpg"}],"research_interests":[{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false},{"id":262511,"name":"GMR/PMR","url":"https://www.academia.edu/Documents/in/GMR_PMR?f_ri=7715","nofollow":false},{"id":343507,"name":"Magnetic multilayers","url":"https://www.academia.edu/Documents/in/Magnetic_multilayers?f_ri=7715","nofollow":false},{"id":370892,"name":"Saturation Magnetization","url":"https://www.academia.edu/Documents/in/Saturation_Magnetization?f_ri=7715","nofollow":false}]}, }) } })();</script></ul></li></ul></div></div><div class="u-borderBottom1 u-borderColorGrayLighter"><div class="clearfix u-pv7x u-mb0x js-work-card work_1426807" data-work_id="1426807" itemscope="itemscope" itemtype="https://schema.org/ScholarlyArticle"><div class="header"><div class="title u-fontSerif u-fs22 u-lineHeight1_3"><a class="u-tcGrayDarkest js-work-link" href="https://www.academia.edu/1426807/Gas_phase_synthesis_of_fcc_cobalt_nanoparticles">Gas phase synthesis of fcc-cobalt nanoparticles</a></div></div><div class="u-pb4x u-mt3x"></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue Button--sm 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Materials","url":"https://www.academia.edu/Documents/in/Magnetism_and_Magnetic_Materials?f_ri=7715"},{"id":1208729,"name":"Charge Distribution","url":"https://www.academia.edu/Documents/in/Charge_Distribution?f_ri=7715"}]}, }) } })();</script></ul></li></ul></div></div><div class="u-borderBottom1 u-borderColorGrayLighter"><div class="clearfix u-pv7x u-mb0x js-work-card work_42003250 coauthored" data-work_id="42003250" itemscope="itemscope" itemtype="https://schema.org/ScholarlyArticle"><div class="header"><div class="title u-fontSerif u-fs22 u-lineHeight1_3"><a class="u-tcGrayDarkest js-work-link" href="https://www.academia.edu/42003250/Efficiency_Analysis_of_Fractional_KiloWatt_Reluctance_Motors_with_Various_Frame_Sizes_Taking_into_Account_the_Impact_of_the_Punching_Process">Efficiency Analysis of Fractional KiloWatt Reluctance Motors with Various Frame Sizes, Taking into Account the Impact of the Punching Process</a></div></div><div class="u-pb4x u-mt3x"><div class="summary u-fs14 u-fw300 u-lineHeight1_5 u-tcGrayDarkest"><div class="summarized">The need to reduce electricity consumption by electrical devices, including electric motors, is the reason for the development of new designs. Designers strive to improve operational parameters, including efficiency, using, for example,... <a class="more_link u-tcGrayDark u-linkUnstyled" data-container=".work_42003250" data-show=".complete" data-hide=".summarized" data-more-link-behavior="true" href="#">more</a></div><div class="complete hidden">The need to reduce electricity consumption by electrical devices, including electric motors, is the reason for the development of new designs. Designers strive to improve operational parameters, including efficiency, using, for example, new types of magnetic materials, new types of stator windings, etc. Currently, in mass production, motor cores are made of punched laminations-punching causes damage of core parts. For motors of relatively large geometrical sizes, this effect is ignored during design. For motors having small dimensions, this negative effect results in a reduction in efficiency, which is mostly small for this type of motor. In this paper, the authors propose a new rapid algorithm based on simple measurements to determine the material characteristics of the damaged material part. Then, using them in the FEM models, they determine the efficiency of motors with various powers and frame sizes. On this basis, the conclusions are formulated, they may be helpful for motor designers.</div></div></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue Button--sm js-bookmark-button" data-academia-share="Work/42003250" data-share-source="work_strip" data-spinner="small_white_hide_contents"><i class="fa fa-plus"></i><span class="work-strip-link-text u-ml1x" data-content="button_text">Bookmark</span></a></div></li><li class="InlineList-item"><div class="download"><a id="d52c606bddab95371b765ac8cddbd36d" rel="nofollow" data-download="{&quot;attachment_id&quot;:62127643,&quot;asset_id&quot;:42003250,&quot;asset_type&quot;:&quot;Work&quot;,&quot;always_allow_download&quot;:false,&quot;track&quot;:null,&quot;button_location&quot;:&quot;work_strip&quot;,&quot;source&quot;:null,&quot;hide_modal&quot;:null}" class="Button Button--sm Button--inverseGreen js-download-button prompt_button doc_download" href="https://www.academia.edu/attachments/62127643/download_file?st=MTczMjQ2OTkxNiw4LjIyMi4yMDguMTQ2&s=work_strip"><i class="fa fa-arrow-circle-o-down fa-lg"></i><span class="u-textUppercase u-ml1x" data-content="button_text">Download</span></a></div></li><li class="InlineList-item"><ul class="InlineList InlineList--bordered u-ph0x"><li class="InlineList-item InlineList-item--bordered"><span class="InlineList-item-text">by&nbsp;<span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a class="u-tcGrayDark u-fw700" data-has-card-for-user="147292932" href="https://independent.academia.edu/ZbigniewGmyrek">Zbigniew Gmyrek</a><script data-card-contents-for-user="147292932" type="text/json">{"id":147292932,"first_name":"Zbigniew","last_name":"Gmyrek","domain_name":"independent","page_name":"ZbigniewGmyrek","display_name":"Zbigniew Gmyrek","profile_url":"https://independent.academia.edu/ZbigniewGmyrek?f_ri=7715","photo":"/images/s65_no_pic.png"}</script></span></span><span class="u-displayInlineBlock InlineList-item-text">&nbsp;and&nbsp;<span class="u-textDecorationUnderline u-clickable InlineList-item-text js-work-more-authors-42003250">+1</span><div class="hidden js-additional-users-42003250"><div><span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a href="https://independent.academia.edu/KrzysztofSm%C3%B3%C5%82ka">Krzysztof Smółka</a></span></div></div></span><script>(function(){ var popoverSettings = { el: $('.js-work-more-authors-42003250'), placement: 'bottom', hide_delay: 200, html: true, content: function(){ return $('.js-additional-users-42003250').html(); 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Designers strive to improve operational parameters, including efficiency, using, for example, new types of magnetic materials, new types of stator windings, etc. Currently, in mass production, motor cores are made of punched laminations-punching causes damage of core parts. For motors of relatively large geometrical sizes, this effect is ignored during design. For motors having small dimensions, this negative effect results in a reduction in efficiency, which is mostly small for this type of motor. In this paper, the authors propose a new rapid algorithm based on simple measurements to determine the material characteristics of the damaged material part. Then, using them in the FEM models, they determine the efficiency of motors with various powers and frame sizes. On this basis, the conclusions are formulated, they may be helpful for motor designers.","downloadable_attachments":[{"id":62127643,"asset_id":42003250,"asset_type":"Work","always_allow_download":false}],"ordered_authors":[{"id":147292932,"first_name":"Zbigniew","last_name":"Gmyrek","domain_name":"independent","page_name":"ZbigniewGmyrek","display_name":"Zbigniew Gmyrek","profile_url":"https://independent.academia.edu/ZbigniewGmyrek?f_ri=7715","photo":"/images/s65_no_pic.png"},{"id":146249773,"first_name":"Krzysztof","last_name":"Smółka","domain_name":"independent","page_name":"KrzysztofSmółka","display_name":"Krzysztof Smółka","profile_url":"https://independent.academia.edu/KrzysztofSm%C3%B3%C5%82ka?f_ri=7715","photo":"https://0.academia-photos.com/146249773/49380230/108465339/s65_krzysztof.sm_ka.jpg"}],"research_interests":[{"id":49,"name":"Electrical Engineering","url":"https://www.academia.edu/Documents/in/Electrical_Engineering?f_ri=7715","nofollow":false},{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false},{"id":48107,"name":"Electrical Motors","url":"https://www.academia.edu/Documents/in/Electrical_Motors?f_ri=7715","nofollow":false},{"id":219927,"name":"Efficiency","url":"https://www.academia.edu/Documents/in/Efficiency?f_ri=7715","nofollow":false},{"id":615179,"name":"Numerical Models","url":"https://www.academia.edu/Documents/in/Numerical_Models?f_ri=7715"},{"id":1003115,"name":"FEM Modelling and Numerical Simulation","url":"https://www.academia.edu/Documents/in/FEM_Modelling_and_Numerical_Simulation?f_ri=7715"},{"id":1549413,"name":"Synchronous Reluctance Motors","url":"https://www.academia.edu/Documents/in/Synchronous_Reluctance_Motors?f_ri=7715"}]}, }) } })();</script></ul></li></ul></div></div><div class="u-borderBottom1 u-borderColorGrayLighter"><div class="clearfix u-pv7x u-mb0x js-work-card work_5537187" data-work_id="5537187" itemscope="itemscope" itemtype="https://schema.org/ScholarlyArticle"><div class="header"><div class="title u-fontSerif u-fs22 u-lineHeight1_3"><a class="u-tcGrayDarkest js-work-link" href="https://www.academia.edu/5537187/Magnetic_anisotropy_and_intergrain_interactions_in_L10_CoPt_1_1_1_Pt_1_1_1_MgO_1_0_0_PLD_granular_films_with_tilted_easy_axes">Magnetic anisotropy and intergrain interactions in L10-CoPt(1 1 1)/Pt(1 1 1)/MgO(1 0 0) PLD granular films with tilted easy axes</a></div></div><div class="u-pb4x u-mt3x"><div class="summary u-fs14 u-fw300 u-lineHeight1_5 u-tcGrayDarkest"><div class="summarized">The magnetic properties of tilted easy axis L10 CoPt(111)/Pt(111)/MgO(100) film, deposited by pulsed laser deposition, were investigated by magnetization angular dependence measurements and magnetic force microscopy (MFM). The room... <a class="more_link u-tcGrayDark u-linkUnstyled" data-container=".work_5537187" data-show=".complete" data-hide=".summarized" data-more-link-behavior="true" href="#">more</a></div><div class="complete hidden">The magnetic properties of tilted easy axis L10 CoPt(111)/Pt(111)/MgO(100) film, deposited by pulsed laser deposition, were investigated by magnetization angular dependence measurements and magnetic force microscopy (MFM). The room temperature anisotropy constant, evaluated measuring the in-plane variation of transverse magnetization under a rotating magnetic field, is K = 5x10^6 erg/cm^3. The domain structure, observed by MFM, consists of decoupled single domain grains, unlike the maze-like structure usually observed for similar systems. This was confirmed by the analysis of dc demagnetization and isothermal remanence magnetization curves, which provided evidence of predominant magnetostatic interactions.</div></div></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue Button--sm js-bookmark-button" data-academia-share="Work/5537187" data-share-source="work_strip" data-spinner="small_white_hide_contents"><i class="fa fa-plus"></i><span class="work-strip-link-text u-ml1x" data-content="button_text">Bookmark</span></a></div></li><li class="InlineList-item"><div class="download"><a id="4dc7396c62008ac9acae255f0672026f" rel="nofollow" data-download="{&quot;attachment_id&quot;:49254079,&quot;asset_id&quot;:5537187,&quot;asset_type&quot;:&quot;Work&quot;,&quot;always_allow_download&quot;:false,&quot;track&quot;:null,&quot;button_location&quot;:&quot;work_strip&quot;,&quot;source&quot;:null,&quot;hide_modal&quot;:null}" class="Button Button--sm Button--inverseGreen js-download-button prompt_button doc_download" href="https://www.academia.edu/attachments/49254079/download_file?st=MTczMjQ2OTkxNiw4LjIyMi4yMDguMTQ2&s=work_strip"><i class="fa fa-arrow-circle-o-down fa-lg"></i><span class="u-textUppercase u-ml1x" data-content="button_text">Download</span></a></div></li><li class="InlineList-item"><ul class="InlineList InlineList--bordered u-ph0x"><li class="InlineList-item InlineList-item--bordered"><span class="InlineList-item-text">by&nbsp;<span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a class="u-tcGrayDark u-fw700" data-has-card-for-user="7844122" href="https://cnr-it.academia.edu/GaspareVarvaro">Gaspare Varvaro</a><script data-card-contents-for-user="7844122" type="text/json">{"id":7844122,"first_name":"Gaspare","last_name":"Varvaro","domain_name":"cnr-it","page_name":"GaspareVarvaro","display_name":"Gaspare Varvaro","profile_url":"https://cnr-it.academia.edu/GaspareVarvaro?f_ri=7715","photo":"https://0.academia-photos.com/7844122/2787376/10939077/s65_gaspare.varvaro.png"}</script></span></span></li><li class="js-paper-rank-work_5537187 InlineList-item InlineList-item--bordered hidden"><span class="js-paper-rank-view hidden u-tcGrayDark" data-paper-rank-work-id="5537187"><i class="u-m1x fa fa-bar-chart"></i><strong class="js-paper-rank"></strong></span><script>$(function() { new Works.PaperRankView({ workId: 5537187, container: ".js-paper-rank-work_5537187", }); 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$(".js-view-count[data-work-id=5537187]").text(description); $(".js-view-count-work_5537187").attr('title', description).tooltip(); }); });</script></span><script>$(function() { $(".js-view-count-work_5537187").removeClass('hidden') })</script></div></li><li class="InlineList-item u-positionRelative" style="max-width: 250px"><div class="u-positionAbsolute" data-has-card-for-ri-list="5537187"><i class="fa fa-tag InlineList-item-icon u-positionRelative"></i>&nbsp;&nbsp;<a class="InlineList-item-text u-positionRelative">7</a>&nbsp;&nbsp;</div><span class="InlineList-item-text u-textTruncate u-pl9x"><a class="InlineList-item-text" data-has-card-for-ri="48" href="https://www.academia.edu/Documents/in/Engineering">Engineering</a>,&nbsp;<script data-card-contents-for-ri="48" type="text/json">{"id":48,"name":"Engineering","url":"https://www.academia.edu/Documents/in/Engineering?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="7715" href="https://www.academia.edu/Documents/in/Magnetic_Materials">Magnetic Materials</a>,&nbsp;<script data-card-contents-for-ri="7715" type="text/json">{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="15934" href="https://www.academia.edu/Documents/in/Magnetic_thin_film">Magnetic thin film</a>,&nbsp;<script data-card-contents-for-ri="15934" type="text/json">{"id":15934,"name":"Magnetic thin film","url":"https://www.academia.edu/Documents/in/Magnetic_thin_film?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="118582" href="https://www.academia.edu/Documents/in/Physical_sciences">Physical sciences</a><script data-card-contents-for-ri="118582" type="text/json">{"id":118582,"name":"Physical sciences","url":"https://www.academia.edu/Documents/in/Physical_sciences?f_ri=7715","nofollow":false}</script></span></li><script>(function(){ if (true) { new Aedu.ResearchInterestListCard({ el: $('*[data-has-card-for-ri-list=5537187]'), work: {"id":5537187,"title":"Magnetic anisotropy and intergrain interactions in L10-CoPt(1 1 1)/Pt(1 1 1)/MgO(1 0 0) PLD granular films with tilted easy axes","created_at":"2013-12-27T01:06:18.389-08:00","url":"https://www.academia.edu/5537187/Magnetic_anisotropy_and_intergrain_interactions_in_L10_CoPt_1_1_1_Pt_1_1_1_MgO_1_0_0_PLD_granular_films_with_tilted_easy_axes?f_ri=7715","dom_id":"work_5537187","summary":"The magnetic properties of tilted easy axis L10 CoPt(111)/Pt(111)/MgO(100) film, deposited by pulsed laser deposition, were investigated by magnetization angular dependence measurements and magnetic force microscopy (MFM). The room temperature anisotropy constant, evaluated measuring the in-plane variation of transverse magnetization under a rotating magnetic field, is K = 5x10^6 erg/cm^3. The domain structure, observed by MFM, consists of decoupled single domain grains, unlike the maze-like structure usually observed for similar systems. This was confirmed by the analysis of dc demagnetization and isothermal remanence magnetization curves, which provided evidence of predominant magnetostatic interactions.","downloadable_attachments":[{"id":49254079,"asset_id":5537187,"asset_type":"Work","always_allow_download":false}],"ordered_authors":[{"id":7844122,"first_name":"Gaspare","last_name":"Varvaro","domain_name":"cnr-it","page_name":"GaspareVarvaro","display_name":"Gaspare Varvaro","profile_url":"https://cnr-it.academia.edu/GaspareVarvaro?f_ri=7715","photo":"https://0.academia-photos.com/7844122/2787376/10939077/s65_gaspare.varvaro.png"}],"research_interests":[{"id":48,"name":"Engineering","url":"https://www.academia.edu/Documents/in/Engineering?f_ri=7715","nofollow":false},{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false},{"id":15934,"name":"Magnetic thin film","url":"https://www.academia.edu/Documents/in/Magnetic_thin_film?f_ri=7715","nofollow":false},{"id":118582,"name":"Physical sciences","url":"https://www.academia.edu/Documents/in/Physical_sciences?f_ri=7715","nofollow":false},{"id":510090,"name":"Magnetism and Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetism_and_Magnetic_Materials?f_ri=7715"},{"id":566558,"name":"Magnetic Anisotropy","url":"https://www.academia.edu/Documents/in/Magnetic_Anisotropy?f_ri=7715"},{"id":606322,"name":"Magnetic Interaction","url":"https://www.academia.edu/Documents/in/Magnetic_Interaction?f_ri=7715"}]}, }) } })();</script></ul></li></ul></div></div><div class="u-borderBottom1 u-borderColorGrayLighter"><div class="clearfix u-pv7x u-mb0x js-work-card work_4704422" data-work_id="4704422" itemscope="itemscope" itemtype="https://schema.org/ScholarlyArticle"><div class="header"><div class="title u-fontSerif u-fs22 u-lineHeight1_3"><a class="u-tcGrayDarkest js-work-link" href="https://www.academia.edu/4704422/Solid_State_Sintering_of_Hydrothermal_Powders_Densification_and_Grain_Growth_Kinetics_of_Nickel_Zinc_Ferrites">Solid-State Sintering of Hydrothermal Powders: Densification and Grain Growth Kinetics of Nickel–Zinc Ferrites</a></div></div><div class="u-pb4x u-mt3x"></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue Button--sm js-bookmark-button" data-academia-share="Work/4704422" data-share-source="work_strip" data-spinner="small_white_hide_contents"><i class="fa fa-plus"></i><span class="work-strip-link-text u-ml1x" data-content="button_text">Bookmark</span></a></div></li><li class="InlineList-item"><div class="download"><a id="08ae7dadb1ce1258d249ddf0ba336abe" rel="nofollow" data-download="{&quot;attachment_id&quot;:49677570,&quot;asset_id&quot;:4704422,&quot;asset_type&quot;:&quot;Work&quot;,&quot;always_allow_download&quot;:false,&quot;track&quot;:null,&quot;button_location&quot;:&quot;work_strip&quot;,&quot;source&quot;:null,&quot;hide_modal&quot;:null}" class="Button Button--sm Button--inverseGreen js-download-button prompt_button doc_download" href="https://www.academia.edu/attachments/49677570/download_file?st=MTczMjQ2OTkxNiw4LjIyMi4yMDguMTQ2&s=work_strip"><i class="fa fa-arrow-circle-o-down fa-lg"></i><span class="u-textUppercase u-ml1x" data-content="button_text">Download</span></a></div></li><li class="InlineList-item"><ul class="InlineList InlineList--bordered u-ph0x"><li class="InlineList-item InlineList-item--bordered"><span class="InlineList-item-text">by&nbsp;<span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a class="u-tcGrayDark u-fw700" data-has-card-for-user="6001165" href="https://independent.academia.edu/AndersonDias1">Anderson Dias</a><script data-card-contents-for-user="6001165" type="text/json">{"id":6001165,"first_name":"Anderson","last_name":"Dias","domain_name":"independent","page_name":"AndersonDias1","display_name":"Anderson Dias","profile_url":"https://independent.academia.edu/AndersonDias1?f_ri=7715","photo":"https://0.academia-photos.com/6001165/86311572/74974240/s65_anderson.dias.jpeg"}</script></span></span></li><li class="js-paper-rank-work_4704422 InlineList-item InlineList-item--bordered hidden"><span class="js-paper-rank-view hidden u-tcGrayDark" data-paper-rank-work-id="4704422"><i class="u-m1x fa fa-bar-chart"></i><strong class="js-paper-rank"></strong></span><script>$(function() { new Works.PaperRankView({ workId: 4704422, container: ".js-paper-rank-work_4704422", }); });</script></li><li class="js-percentile-work_4704422 InlineList-item InlineList-item--bordered hidden u-tcGrayDark"><span class="percentile-widget hidden"><span 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$(".js-view-count[data-work-id=4704422]").text(description); $(".js-view-count-work_4704422").attr('title', description).tooltip(); }); });</script></span><script>$(function() { $(".js-view-count-work_4704422").removeClass('hidden') })</script></div></li><li class="InlineList-item u-positionRelative" style="max-width: 250px"><div class="u-positionAbsolute" data-has-card-for-ri-list="4704422"><i class="fa fa-tag InlineList-item-icon u-positionRelative"></i>&nbsp;&nbsp;<a class="InlineList-item-text u-positionRelative">12</a>&nbsp;&nbsp;</div><span class="InlineList-item-text u-textTruncate u-pl10x"><a class="InlineList-item-text" data-has-card-for-ri="56" href="https://www.academia.edu/Documents/in/Materials_Engineering">Materials Engineering</a>,&nbsp;<script data-card-contents-for-ri="56" type="text/json">{"id":56,"name":"Materials Engineering","url":"https://www.academia.edu/Documents/in/Materials_Engineering?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="4987" href="https://www.academia.edu/Documents/in/Kinetics">Kinetics</a>,&nbsp;<script data-card-contents-for-ri="4987" type="text/json">{"id":4987,"name":"Kinetics","url":"https://www.academia.edu/Documents/in/Kinetics?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="7715" href="https://www.academia.edu/Documents/in/Magnetic_Materials">Magnetic Materials</a>,&nbsp;<script data-card-contents-for-ri="7715" type="text/json">{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="10655" href="https://www.academia.edu/Documents/in/Scanning_Electron_Microscopy">Scanning Electron Microscopy</a><script data-card-contents-for-ri="10655" type="text/json">{"id":10655,"name":"Scanning Electron Microscopy","url":"https://www.academia.edu/Documents/in/Scanning_Electron_Microscopy?f_ri=7715","nofollow":false}</script></span></li><script>(function(){ if (true) { new Aedu.ResearchInterestListCard({ el: $('*[data-has-card-for-ri-list=4704422]'), work: {"id":4704422,"title":"Solid-State Sintering of Hydrothermal Powders: Densification and Grain Growth Kinetics of Nickel–Zinc Ferrites","created_at":"2013-10-07T10:13:53.958-07:00","url":"https://www.academia.edu/4704422/Solid_State_Sintering_of_Hydrothermal_Powders_Densification_and_Grain_Growth_Kinetics_of_Nickel_Zinc_Ferrites?f_ri=7715","dom_id":"work_4704422","summary":null,"downloadable_attachments":[{"id":49677570,"asset_id":4704422,"asset_type":"Work","always_allow_download":false}],"ordered_authors":[{"id":6001165,"first_name":"Anderson","last_name":"Dias","domain_name":"independent","page_name":"AndersonDias1","display_name":"Anderson 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itemscope="itemscope" itemtype="https://schema.org/ScholarlyArticle"><div class="header"><div class="title u-fontSerif u-fs22 u-lineHeight1_3"><a class="u-tcGrayDarkest js-work-link" href="https://www.academia.edu/7489761/Synthesis_and_Magnetic_Properties_of_Single_Crystals_of_MnFe2O4_Nanorods">Synthesis and Magnetic Properties of Single-Crystals of MnFe2O4 Nanorods</a></div></div><div class="u-pb4x u-mt3x"><div class="summary u-fs14 u-fw300 u-lineHeight1_5 u-tcGrayDarkest"><div class="summarized">Single-crystals of MnFe2O4 nanorods with an average diameter of 20 nm and length of 250 nm were synthesized by a hydrothermal process at 180 °C after 12 h. High-resolution transmission electron microscopy (HRTEM) and electron diffraction... <a class="more_link u-tcGrayDark u-linkUnstyled" data-container=".work_7489761" data-show=".complete" data-hide=".summarized" data-more-link-behavior="true" href="#">more</a></div><div class="complete hidden">Single-crystals of MnFe2O4 nanorods with an average diameter of 20 nm and length of 250 nm were synthesized by a hydrothermal process at 180 °C after 12 h. High-resolution transmission electron microscopy (HRTEM) and electron diffraction (ED) analysis revealed that the nanorods grow along the [110] axis, which is one of the easy magnetization axes of the material MnFe2O4. It was found that the nanorods exhibited a saturation magnetization (Ms) of 68.02 emu/g, which is much higher than that of quasi-spherical particles of MnFe2O4, prepared by other approaches such as solid-state reaction methods (Ms = 36.7 emu/g), and coprecipitation processes followed by annealing in vacuo at 400 °C (Ms = 24.4 emu/g). The oriented growth along the easy magnetization axis of MnFe2O4 was suggested to be responsible for the improvement of magnetic properties of MnFe2O4 nanorods. (© Wiley-VCH Verlag GmbH &amp; Co. KGaA, 69451 Weinheim, Germany, 2004)</div></div></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue Button--sm js-bookmark-button" data-academia-share="Work/7489761" data-share-source="work_strip" data-spinner="small_white_hide_contents"><i class="fa fa-plus"></i><span class="work-strip-link-text u-ml1x" data-content="button_text">Bookmark</span></a></div></li><li class="InlineList-item"><div class="download"><a id="45de9a9306d2a7d87cce9a4a9de0ae4d" rel="nofollow" data-download="{&quot;attachment_id&quot;:48452539,&quot;asset_id&quot;:7489761,&quot;asset_type&quot;:&quot;Work&quot;,&quot;always_allow_download&quot;:false,&quot;track&quot;:null,&quot;button_location&quot;:&quot;work_strip&quot;,&quot;source&quot;:null,&quot;hide_modal&quot;:null}" class="Button Button--sm Button--inverseGreen js-download-button prompt_button doc_download" href="https://www.academia.edu/attachments/48452539/download_file?st=MTczMjQ2OTkxNiw4LjIyMi4yMDguMTQ2&s=work_strip"><i class="fa fa-arrow-circle-o-down fa-lg"></i><span class="u-textUppercase u-ml1x" data-content="button_text">Download</span></a></div></li><li class="InlineList-item"><ul class="InlineList InlineList--bordered u-ph0x"><li class="InlineList-item InlineList-item--bordered"><span class="InlineList-item-text">by&nbsp;<span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a class="u-tcGrayDark u-fw700" data-has-card-for-user="13368304" href="https://uic.academia.edu/BinyangHou">Binyang Hou</a><script data-card-contents-for-user="13368304" type="text/json">{"id":13368304,"first_name":"Binyang","last_name":"Hou","domain_name":"uic","page_name":"BinyangHou","display_name":"Binyang Hou","profile_url":"https://uic.academia.edu/BinyangHou?f_ri=7715","photo":"/images/s65_no_pic.png"}</script></span></span></li><li class="js-paper-rank-work_7489761 InlineList-item InlineList-item--bordered hidden"><span class="js-paper-rank-view hidden u-tcGrayDark" data-paper-rank-work-id="7489761"><i class="u-m1x fa fa-bar-chart"></i><strong class="js-paper-rank"></strong></span><script>$(function() { new Works.PaperRankView({ workId: 7489761, container: ".js-paper-rank-work_7489761", }); 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High-resolution transmission electron microscopy (HRTEM) and electron diffraction (ED) analysis revealed that the nanorods grow along the [110] axis, which is one of the easy magnetization axes of the material MnFe2O4. It was found that the nanorods exhibited a saturation magnetization (Ms) of 68.02 emu/g, which is much higher than that of quasi-spherical particles of MnFe2O4, prepared by other approaches such as solid-state reaction methods (Ms = 36.7 emu/g), and coprecipitation processes followed by annealing in vacuo at 400 °C (Ms = 24.4 emu/g). The oriented growth along the easy magnetization axis of MnFe2O4 was suggested to be responsible for the improvement of magnetic properties of MnFe2O4 nanorods. (© Wiley-VCH Verlag GmbH \u0026 Co. KGaA, 69451 Weinheim, Germany, 2004)","downloadable_attachments":[{"id":48452539,"asset_id":7489761,"asset_type":"Work","always_allow_download":false}],"ordered_authors":[{"id":13368304,"first_name":"Binyang","last_name":"Hou","domain_name":"uic","page_name":"BinyangHou","display_name":"Binyang Hou","profile_url":"https://uic.academia.edu/BinyangHou?f_ri=7715","photo":"/images/s65_no_pic.png"}],"research_interests":[{"id":48,"name":"Engineering","url":"https://www.academia.edu/Documents/in/Engineering?f_ri=7715","nofollow":false},{"id":56,"name":"Materials Engineering","url":"https://www.academia.edu/Documents/in/Materials_Engineering?f_ri=7715","nofollow":false},{"id":505,"name":"Condensed Matter Physics","url":"https://www.academia.edu/Documents/in/Condensed_Matter_Physics?f_ri=7715","nofollow":false},{"id":518,"name":"Quantum 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Palchik</a><script data-card-contents-for-user="52695075" type="text/json">{"id":52695075,"first_name":"O.","last_name":"Palchik","domain_name":"independent","page_name":"OPalchik","display_name":"O. Palchik","profile_url":"https://independent.academia.edu/OPalchik?f_ri=7715","photo":"/images/s65_no_pic.png"}</script></span></span></li><li class="js-paper-rank-work_28112339 InlineList-item InlineList-item--bordered hidden"><span class="js-paper-rank-view hidden u-tcGrayDark" data-paper-rank-work-id="28112339"><i class="u-m1x fa fa-bar-chart"></i><strong class="js-paper-rank"></strong></span><script>$(function() { new Works.PaperRankView({ workId: 28112339, container: ".js-paper-rank-work_28112339", }); });</script></li><li class="js-percentile-work_28112339 InlineList-item InlineList-item--bordered hidden u-tcGrayDark"><span class="percentile-widget hidden"><span class="u-mr2x percentile-widget" style="display: none">•</span><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 28112339; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-percentile-work_28112339"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></li><li class="js-view-count-work_28112339 InlineList-item InlineList-item--bordered hidden"><div><span><span class="js-view-count view-count u-mr2x" data-work-id="28112339"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 28112339; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=28112339]").text(description); $(".js-view-count-work_28112339").attr('title', description).tooltip(); }); });</script></span><script>$(function() { $(".js-view-count-work_28112339").removeClass('hidden') })</script></div></li><li class="InlineList-item u-positionRelative" style="max-width: 250px"><div class="u-positionAbsolute" data-has-card-for-ri-list="28112339"><i class="fa fa-tag InlineList-item-icon u-positionRelative"></i>&nbsp;&nbsp;<a class="InlineList-item-text u-positionRelative">10</a>&nbsp;&nbsp;</div><span class="InlineList-item-text u-textTruncate u-pl10x"><a class="InlineList-item-text" data-has-card-for-ri="48" href="https://www.academia.edu/Documents/in/Engineering">Engineering</a>,&nbsp;<script data-card-contents-for-ri="48" type="text/json">{"id":48,"name":"Engineering","url":"https://www.academia.edu/Documents/in/Engineering?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="7715" href="https://www.academia.edu/Documents/in/Magnetic_Materials">Magnetic Materials</a>,&nbsp;<script data-card-contents-for-ri="7715" type="text/json">{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="11678" href="https://www.academia.edu/Documents/in/Nanocomposites">Nanocomposites</a>,&nbsp;<script data-card-contents-for-ri="11678" type="text/json">{"id":11678,"name":"Nanocomposites","url":"https://www.academia.edu/Documents/in/Nanocomposites?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="15639" href="https://www.academia.edu/Documents/in/Ultrasound">Ultrasound</a><script data-card-contents-for-ri="15639" type="text/json">{"id":15639,"name":"Ultrasound","url":"https://www.academia.edu/Documents/in/Ultrasound?f_ri=7715","nofollow":false}</script></span></li><script>(function(){ if (true) { new Aedu.ResearchInterestListCard({ el: $('*[data-has-card-for-ri-list=28112339]'), work: {"id":28112339,"title":"Preparation and characterization of nickel-polystyrene nanocomposite by ultrasound irradiation","created_at":"2016-08-29T23:22:14.674-07:00","url":"https://www.academia.edu/28112339/Preparation_and_characterization_of_nickel_polystyrene_nanocomposite_by_ultrasound_irradiation?f_ri=7715","dom_id":"work_28112339","summary":null,"downloadable_attachments":[{"id":48428683,"asset_id":28112339,"asset_type":"Work","always_allow_download":false}],"ordered_authors":[{"id":52695075,"first_name":"O.","last_name":"Palchik","domain_name":"independent","page_name":"OPalchik","display_name":"O. Palchik","profile_url":"https://independent.academia.edu/OPalchik?f_ri=7715","photo":"/images/s65_no_pic.png"}],"research_interests":[{"id":48,"name":"Engineering","url":"https://www.academia.edu/Documents/in/Engineering?f_ri=7715","nofollow":false},{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false},{"id":11678,"name":"Nanocomposites","url":"https://www.academia.edu/Documents/in/Nanocomposites?f_ri=7715","nofollow":false},{"id":15639,"name":"Ultrasound","url":"https://www.academia.edu/Documents/in/Ultrasound?f_ri=7715","nofollow":false},{"id":22803,"name":"Sonochemistry","url":"https://www.academia.edu/Documents/in/Sonochemistry?f_ri=7715"},{"id":96502,"name":"Applied","url":"https://www.academia.edu/Documents/in/Applied?f_ri=7715"},{"id":194828,"name":"Nickel","url":"https://www.academia.edu/Documents/in/Nickel?f_ri=7715"},{"id":260118,"name":"CHEMICAL SCIENCES","url":"https://www.academia.edu/Documents/in/CHEMICAL_SCIENCES?f_ri=7715"},{"id":718849,"name":"Cellular and Molecular Medicine","url":"https://www.academia.edu/Documents/in/Cellular_and_Molecular_Medicine?f_ri=7715"},{"id":966213,"name":"Journal of Applied Polymer Science","url":"https://www.academia.edu/Documents/in/Journal_of_Applied_Polymer_Science?f_ri=7715"}]}, }) } })();</script></ul></li></ul></div></div><div class="u-borderBottom1 u-borderColorGrayLighter"><div class="clearfix u-pv7x u-mb0x js-work-card work_22366954 coauthored" data-work_id="22366954" itemscope="itemscope" itemtype="https://schema.org/ScholarlyArticle"><div class="header"><div class="title u-fontSerif u-fs22 u-lineHeight1_3"><a class="u-tcGrayDarkest js-work-link" href="https://www.academia.edu/22366954/Strongly_correlated_electron_systems">Strongly correlated electron systems</a></div></div><div class="u-pb4x u-mt3x"></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue Button--sm js-bookmark-button" data-academia-share="Work/22366954" data-share-source="work_strip" data-spinner="small_white_hide_contents"><i class="fa fa-plus"></i><span class="work-strip-link-text u-ml1x" data-content="button_text">Bookmark</span></a></div></li><li class="InlineList-item"><div class="download"><a id="f7f5ea3f38e36807564992de0e0e358d" rel="nofollow" data-download="{&quot;attachment_id&quot;:42994474,&quot;asset_id&quot;:22366954,&quot;asset_type&quot;:&quot;Work&quot;,&quot;always_allow_download&quot;:false,&quot;track&quot;:null,&quot;button_location&quot;:&quot;work_strip&quot;,&quot;source&quot;:null,&quot;hide_modal&quot;:null}" class="Button Button--sm Button--inverseGreen js-download-button prompt_button doc_download" href="https://www.academia.edu/attachments/42994474/download_file?st=MTczMjQ2OTkxNiw4LjIyMi4yMDguMTQ2&s=work_strip"><i class="fa fa-arrow-circle-o-down fa-lg"></i><span class="u-textUppercase u-ml1x" data-content="button_text">Download</span></a></div></li><li class="InlineList-item"><ul class="InlineList InlineList--bordered u-ph0x"><li class="InlineList-item InlineList-item--bordered"><span class="InlineList-item-text">by&nbsp;<span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a class="u-tcGrayDark u-fw700" data-has-card-for-user="32519121" href="https://independent.academia.edu/CBatista1">C. Batista</a><script data-card-contents-for-user="32519121" type="text/json">{"id":32519121,"first_name":"C.","last_name":"Batista","domain_name":"independent","page_name":"CBatista1","display_name":"C. Batista","profile_url":"https://independent.academia.edu/CBatista1?f_ri=7715","photo":"/images/s65_no_pic.png"}</script></span></span><span class="u-displayInlineBlock InlineList-item-text">&nbsp;and&nbsp;<span class="u-textDecorationUnderline u-clickable InlineList-item-text js-work-more-authors-22366954">+1</span><div class="hidden js-additional-users-22366954"><div><span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a href="https://cambridge.academia.edu/SiddharthmontuSaxena">Siddharth S Saxena</a></span></div></div></span><script>(function(){ var popoverSettings = { el: $('.js-work-more-authors-22366954'), placement: 'bottom', hide_delay: 200, html: true, content: function(){ return $('.js-additional-users-22366954').html(); } } new HoverPopover(popoverSettings); })();</script></li><li class="js-paper-rank-work_22366954 InlineList-item InlineList-item--bordered hidden"><span class="js-paper-rank-view hidden u-tcGrayDark" data-paper-rank-work-id="22366954"><i class="u-m1x fa fa-bar-chart"></i><strong class="js-paper-rank"></strong></span><script>$(function() { new Works.PaperRankView({ workId: 22366954, container: ".js-paper-rank-work_22366954", }); });</script></li><li class="js-percentile-work_22366954 InlineList-item InlineList-item--bordered hidden u-tcGrayDark"><span class="percentile-widget hidden"><span class="u-mr2x percentile-widget" style="display: none">•</span><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 22366954; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-percentile-work_22366954"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></li><li class="js-view-count-work_22366954 InlineList-item InlineList-item--bordered hidden"><div><span><span class="js-view-count view-count u-mr2x" data-work-id="22366954"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 22366954; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=22366954]").text(description); $(".js-view-count-work_22366954").attr('title', description).tooltip(); }); });</script></span><script>$(function() { $(".js-view-count-work_22366954").removeClass('hidden') })</script></div></li><li class="InlineList-item u-positionRelative" style="max-width: 250px"><div class="u-positionAbsolute" data-has-card-for-ri-list="22366954"><i class="fa fa-tag InlineList-item-icon u-positionRelative"></i>&nbsp;&nbsp;<a class="InlineList-item-text u-positionRelative">32</a>&nbsp;&nbsp;</div><span class="InlineList-item-text u-textTruncate u-pl10x"><a class="InlineList-item-text" data-has-card-for-ri="56" href="https://www.academia.edu/Documents/in/Materials_Engineering">Materials Engineering</a>,&nbsp;<script data-card-contents-for-ri="56" type="text/json">{"id":56,"name":"Materials Engineering","url":"https://www.academia.edu/Documents/in/Materials_Engineering?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="505" href="https://www.academia.edu/Documents/in/Condensed_Matter_Physics">Condensed Matter Physics</a>,&nbsp;<script data-card-contents-for-ri="505" type="text/json">{"id":505,"name":"Condensed Matter Physics","url":"https://www.academia.edu/Documents/in/Condensed_Matter_Physics?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="522" href="https://www.academia.edu/Documents/in/Thermodynamics">Thermodynamics</a>,&nbsp;<script data-card-contents-for-ri="522" type="text/json">{"id":522,"name":"Thermodynamics","url":"https://www.academia.edu/Documents/in/Thermodynamics?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="6515" href="https://www.academia.edu/Documents/in/Water_Purification">Water Purification</a><script data-card-contents-for-ri="6515" type="text/json">{"id":6515,"name":"Water Purification","url":"https://www.academia.edu/Documents/in/Water_Purification?f_ri=7715","nofollow":false}</script></span></li><script>(function(){ if (true) { new Aedu.ResearchInterestListCard({ el: $('*[data-has-card-for-ri-list=22366954]'), work: {"id":22366954,"title":"Strongly correlated electron systems","created_at":"2016-02-23T16:57:25.280-08:00","url":"https://www.academia.edu/22366954/Strongly_correlated_electron_systems?f_ri=7715","dom_id":"work_22366954","summary":null,"downloadable_attachments":[{"id":42994474,"asset_id":22366954,"asset_type":"Work","always_allow_download":false}],"ordered_authors":[{"id":32519121,"first_name":"C.","last_name":"Batista","domain_name":"independent","page_name":"CBatista1","display_name":"C. Batista","profile_url":"https://independent.academia.edu/CBatista1?f_ri=7715","photo":"/images/s65_no_pic.png"},{"id":27440,"first_name":"Siddharth","last_name":"Saxena","domain_name":"cambridge","page_name":"SiddharthmontuSaxena","display_name":"Siddharth S Saxena","profile_url":"https://cambridge.academia.edu/SiddharthmontuSaxena?f_ri=7715","photo":"https://0.academia-photos.com/27440/8960/11851767/s65_siddharth_montu_.saxena.jpg"}],"research_interests":[{"id":56,"name":"Materials Engineering","url":"https://www.academia.edu/Documents/in/Materials_Engineering?f_ri=7715","nofollow":false},{"id":505,"name":"Condensed Matter Physics","url":"https://www.academia.edu/Documents/in/Condensed_Matter_Physics?f_ri=7715","nofollow":false},{"id":522,"name":"Thermodynamics","url":"https://www.academia.edu/Documents/in/Thermodynamics?f_ri=7715","nofollow":false},{"id":6515,"name":"Water Purification","url":"https://www.academia.edu/Documents/in/Water_Purification?f_ri=7715","nofollow":false},{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715"},{"id":17733,"name":"Nanotechnology","url":"https://www.academia.edu/Documents/in/Nanotechnology?f_ri=7715"},{"id":55764,"name":"Transition-Metal Oxides","url":"https://www.academia.edu/Documents/in/Transition-Metal_Oxides?f_ri=7715"},{"id":60653,"name":"Transport Properties","url":"https://www.academia.edu/Documents/in/Transport_Properties?f_ri=7715"},{"id":116009,"name":"Strongly Correlated Electrons","url":"https://www.academia.edu/Documents/in/Strongly_Correlated_Electrons?f_ri=7715"},{"id":125513,"name":"Superconductors","url":"https://www.academia.edu/Documents/in/Superconductors?f_ri=7715"},{"id":132784,"name":"Low Energy Buildngs","url":"https://www.academia.edu/Documents/in/Low_Energy_Buildngs?f_ri=7715"},{"id":158597,"name":"Iron","url":"https://www.academia.edu/Documents/in/Iron?f_ri=7715"},{"id":173963,"name":"Phase transition","url":"https://www.academia.edu/Documents/in/Phase_transition?f_ri=7715"},{"id":174781,"name":"Oscillations","url":"https://www.academia.edu/Documents/in/Oscillations?f_ri=7715"},{"id":177557,"name":"New Mexico","url":"https://www.academia.edu/Documents/in/New_Mexico?f_ri=7715"},{"id":191117,"name":"High Temperature","url":"https://www.academia.edu/Documents/in/High_Temperature?f_ri=7715"},{"id":216003,"name":"Cold Atoms Physics","url":"https://www.academia.edu/Documents/in/Cold_Atoms_Physics?f_ri=7715"},{"id":218692,"name":"Oak","url":"https://www.academia.edu/Documents/in/Oak?f_ri=7715"},{"id":239856,"name":"Bose Hubbard Model","url":"https://www.academia.edu/Documents/in/Bose_Hubbard_Model?f_ri=7715"},{"id":247487,"name":"Temperature Dependence","url":"https://www.academia.edu/Documents/in/Temperature_Dependence?f_ri=7715"},{"id":249922,"name":"Unconventional Superconductivity","url":"https://www.academia.edu/Documents/in/Unconventional_Superconductivity?f_ri=7715"},{"id":446643,"name":"Scientific Discovery","url":"https://www.academia.edu/Documents/in/Scientific_Discovery?f_ri=7715"},{"id":453823,"name":"Length scale","url":"https://www.academia.edu/Documents/in/Length_scale?f_ri=7715"},{"id":491137,"name":"Heavy Fermion","url":"https://www.academia.edu/Documents/in/Heavy_Fermion?f_ri=7715"},{"id":494984,"name":"Quantum Criticality","url":"https://www.academia.edu/Documents/in/Quantum_Criticality?f_ri=7715"},{"id":532493,"name":"Isotope effect","url":"https://www.academia.edu/Documents/in/Isotope_effect?f_ri=7715"},{"id":832541,"name":"Quantum Critical Point","url":"https://www.academia.edu/Documents/in/Quantum_Critical_Point?f_ri=7715"},{"id":983074,"name":"Quantum Phase Transition","url":"https://www.academia.edu/Documents/in/Quantum_Phase_Transition?f_ri=7715"},{"id":1204461,"name":"Department of Energy","url":"https://www.academia.edu/Documents/in/Department_of_Energy?f_ri=7715"},{"id":1263981,"name":"Fine Particles","url":"https://www.academia.edu/Documents/in/Fine_Particles?f_ri=7715"},{"id":1499498,"name":"High energy","url":"https://www.academia.edu/Documents/in/High_energy?f_ri=7715"},{"id":1735044,"name":"Spin Orbit Coupling","url":"https://www.academia.edu/Documents/in/Spin_Orbit_Coupling?f_ri=7715"}]}, }) } })();</script></ul></li></ul></div></div><div class="u-borderBottom1 u-borderColorGrayLighter"><div class="clearfix u-pv7x u-mb0x js-work-card work_3839317" data-work_id="3839317" itemscope="itemscope" itemtype="https://schema.org/ScholarlyArticle"><div class="header"><div class="title u-fontSerif u-fs22 u-lineHeight1_3"><a class="u-tcGrayDarkest js-work-link" href="https://www.academia.edu/3839317/Soft_templating_approach_for_the_synthesis_of_high_surface_area_and_superparamagnetic_mesoporous_iron_oxide_materials">Soft-templating approach for the synthesis of high surface area and superparamagnetic mesoporous iron oxide materials</a></div></div><div class="u-pb4x u-mt3x"><div class="summary u-fs14 u-fw300 u-lineHeight1_5 u-tcGrayDarkest"><div class="summarized">Designing pores of nanoscale dimension into a magnetic material can engineer the surface nanostructure, resulting in a mesoporous material with unique physicochemical properties. Here we report a simple soft-templating approach for the... <a class="more_link u-tcGrayDark u-linkUnstyled" data-container=".work_3839317" data-show=".complete" data-hide=".summarized" data-more-link-behavior="true" href="#">more</a></div><div class="complete hidden">Designing pores of nanoscale dimension into a magnetic material can engineer the surface nanostructure, resulting in a mesoporous material with unique physicochemical properties. Here we report a simple soft-templating approach for the synthesis of new mesoporous iron oxide materials having semi-crystalline pore wall by using an anionic surfactant sodiumdodecylsulfate as the structure-directing agent (SDA) or template at low temperature. On removal of the SDA molecules through solvent extraction the mesostructure is preserved and the material shows considerably high BET surface area and type IV isotherms corresponding to the mesopores. This mesoporous Fe2O3 material showed superparamagnetic behavior and hence this template-assisted synthesis of mesoporous Fe2O3 can find its potential utility in designing magnetic nanostructured materials.</div></div></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue Button--sm js-bookmark-button" data-academia-share="Work/3839317" data-share-source="work_strip" data-spinner="small_white_hide_contents"><i class="fa fa-plus"></i><span class="work-strip-link-text u-ml1x" data-content="button_text">Bookmark</span></a></div></li><li class="InlineList-item"><div class="download"><a id="1165f6a1115f2817fe3c40bb158c9567" rel="nofollow" data-download="{&quot;attachment_id&quot;:50119099,&quot;asset_id&quot;:3839317,&quot;asset_type&quot;:&quot;Work&quot;,&quot;always_allow_download&quot;:false,&quot;track&quot;:null,&quot;button_location&quot;:&quot;work_strip&quot;,&quot;source&quot;:null,&quot;hide_modal&quot;:null}" class="Button Button--sm Button--inverseGreen js-download-button prompt_button doc_download" href="https://www.academia.edu/attachments/50119099/download_file?st=MTczMjQ2OTkxNiw4LjIyMi4yMDguMTQ2&s=work_strip"><i class="fa fa-arrow-circle-o-down fa-lg"></i><span class="u-textUppercase u-ml1x" data-content="button_text">Download</span></a></div></li><li class="InlineList-item"><ul class="InlineList InlineList--bordered u-ph0x"><li class="InlineList-item InlineList-item--bordered"><span class="InlineList-item-text">by&nbsp;<span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a class="u-tcGrayDark u-fw700" data-has-card-for-user="4723846" href="https://sreechaitanyacollege.academia.edu/AMitra">Atanu Mitra</a><script data-card-contents-for-user="4723846" type="text/json">{"id":4723846,"first_name":"Atanu","last_name":"Mitra","domain_name":"sreechaitanyacollege","page_name":"AMitra","display_name":"Atanu Mitra","profile_url":"https://sreechaitanyacollege.academia.edu/AMitra?f_ri=7715","photo":"https://0.academia-photos.com/4723846/1997295/2357342/s65_atanu.mitra.jpg"}</script></span></span></li><li class="js-paper-rank-work_3839317 InlineList-item InlineList-item--bordered hidden"><span class="js-paper-rank-view hidden u-tcGrayDark" data-paper-rank-work-id="3839317"><i class="u-m1x fa fa-bar-chart"></i><strong class="js-paper-rank"></strong></span><script>$(function() { new Works.PaperRankView({ workId: 3839317, container: ".js-paper-rank-work_3839317", }); });</script></li><li class="js-percentile-work_3839317 InlineList-item InlineList-item--bordered hidden u-tcGrayDark"><span class="percentile-widget hidden"><span class="u-mr2x percentile-widget" style="display: none">•</span><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 3839317; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-percentile-work_3839317"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></li><li class="js-view-count-work_3839317 InlineList-item InlineList-item--bordered hidden"><div><span><span class="js-view-count view-count u-mr2x" data-work-id="3839317"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 3839317; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=3839317]").text(description); $(".js-view-count-work_3839317").attr('title', description).tooltip(); }); });</script></span><script>$(function() { $(".js-view-count-work_3839317").removeClass('hidden') })</script></div></li><li class="InlineList-item u-positionRelative" style="max-width: 250px"><div class="u-positionAbsolute" data-has-card-for-ri-list="3839317"><i class="fa fa-tag InlineList-item-icon u-positionRelative"></i>&nbsp;&nbsp;<a class="InlineList-item-text u-positionRelative">11</a>&nbsp;&nbsp;</div><span class="InlineList-item-text u-textTruncate u-pl10x"><a class="InlineList-item-text" data-has-card-for-ri="48" href="https://www.academia.edu/Documents/in/Engineering">Engineering</a>,&nbsp;<script data-card-contents-for-ri="48" type="text/json">{"id":48,"name":"Engineering","url":"https://www.academia.edu/Documents/in/Engineering?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="7715" href="https://www.academia.edu/Documents/in/Magnetic_Materials">Magnetic Materials</a>,&nbsp;<script data-card-contents-for-ri="7715" type="text/json">{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="80451" href="https://www.academia.edu/Documents/in/Solvent_Extraction">Solvent Extraction</a>,&nbsp;<script data-card-contents-for-ri="80451" type="text/json">{"id":80451,"name":"Solvent Extraction","url":"https://www.academia.edu/Documents/in/Solvent_Extraction?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="156579" href="https://www.academia.edu/Documents/in/Iron_Oxide">Iron Oxide</a><script data-card-contents-for-ri="156579" type="text/json">{"id":156579,"name":"Iron Oxide","url":"https://www.academia.edu/Documents/in/Iron_Oxide?f_ri=7715","nofollow":false}</script></span></li><script>(function(){ if (true) { new Aedu.ResearchInterestListCard({ el: $('*[data-has-card-for-ri-list=3839317]'), work: {"id":3839317,"title":"Soft-templating approach for the synthesis of high surface area and superparamagnetic mesoporous iron oxide materials","created_at":"2013-07-02T07:08:52.980-07:00","url":"https://www.academia.edu/3839317/Soft_templating_approach_for_the_synthesis_of_high_surface_area_and_superparamagnetic_mesoporous_iron_oxide_materials?f_ri=7715","dom_id":"work_3839317","summary":"Designing pores of nanoscale dimension into a magnetic material can engineer the surface nanostructure, resulting in a mesoporous material with unique physicochemical properties. Here we report a simple soft-templating approach for the synthesis of new mesoporous iron oxide materials having semi-crystalline pore wall by using an anionic surfactant sodiumdodecylsulfate as the structure-directing agent (SDA) or template at low temperature. On removal of the SDA molecules through solvent extraction the mesostructure is preserved and the material shows considerably high BET surface area and type IV isotherms corresponding to the mesopores. This mesoporous Fe2O3 material showed superparamagnetic behavior and hence this template-assisted synthesis of mesoporous Fe2O3 can find its potential utility in designing magnetic nanostructured materials.","downloadable_attachments":[{"id":50119099,"asset_id":3839317,"asset_type":"Work","always_allow_download":false}],"ordered_authors":[{"id":4723846,"first_name":"Atanu","last_name":"Mitra","domain_name":"sreechaitanyacollege","page_name":"AMitra","display_name":"Atanu Mitra","profile_url":"https://sreechaitanyacollege.academia.edu/AMitra?f_ri=7715","photo":"https://0.academia-photos.com/4723846/1997295/2357342/s65_atanu.mitra.jpg"}],"research_interests":[{"id":48,"name":"Engineering","url":"https://www.academia.edu/Documents/in/Engineering?f_ri=7715","nofollow":false},{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false},{"id":80451,"name":"Solvent Extraction","url":"https://www.academia.edu/Documents/in/Solvent_Extraction?f_ri=7715","nofollow":false},{"id":156579,"name":"Iron Oxide","url":"https://www.academia.edu/Documents/in/Iron_Oxide?f_ri=7715","nofollow":false},{"id":260118,"name":"CHEMICAL SCIENCES","url":"https://www.academia.edu/Documents/in/CHEMICAL_SCIENCES?f_ri=7715"},{"id":386356,"name":"Surface Area","url":"https://www.academia.edu/Documents/in/Surface_Area?f_ri=7715"},{"id":564348,"name":"Anionic Surfactant","url":"https://www.academia.edu/Documents/in/Anionic_Surfactant?f_ri=7715"},{"id":616972,"name":"Low Temperature","url":"https://www.academia.edu/Documents/in/Low_Temperature?f_ri=7715"},{"id":818143,"name":"Nanostructured Material","url":"https://www.academia.edu/Documents/in/Nanostructured_Material?f_ri=7715"},{"id":1232421,"name":"Physicochemical Properties","url":"https://www.academia.edu/Documents/in/Physicochemical_Properties?f_ri=7715"},{"id":1501465,"name":"Microporous","url":"https://www.academia.edu/Documents/in/Microporous?f_ri=7715"}]}, }) } })();</script></ul></li></ul></div></div><div class="u-borderBottom1 u-borderColorGrayLighter"><div class="clearfix u-pv7x u-mb0x js-work-card work_16509986" data-work_id="16509986" itemscope="itemscope" itemtype="https://schema.org/ScholarlyArticle"><div class="header"><div class="title u-fontSerif u-fs22 u-lineHeight1_3"><a class="u-tcGrayDarkest js-work-link" href="https://www.academia.edu/16509986/Evaluation_of_experimental_methods_for_determining_the_magnetically_nonlinear_characteristics_of_electromagnetic_devices">Evaluation of experimental methods for determining the magnetically nonlinear characteristics of electromagnetic devices</a></div></div><div class="u-pb4x u-mt3x"></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue Button--sm js-bookmark-button" data-academia-share="Work/16509986" data-share-source="work_strip" data-spinner="small_white_hide_contents"><i class="fa fa-plus"></i><span class="work-strip-link-text u-ml1x" data-content="button_text">Bookmark</span></a></div></li><li class="InlineList-item"><div class="download"><a id="2e2a34ba4f088462ae5ba32d7096e2fd" rel="nofollow" data-download="{&quot;attachment_id&quot;:42454848,&quot;asset_id&quot;:16509986,&quot;asset_type&quot;:&quot;Work&quot;,&quot;always_allow_download&quot;:false,&quot;track&quot;:null,&quot;button_location&quot;:&quot;work_strip&quot;,&quot;source&quot;:null,&quot;hide_modal&quot;:null}" class="Button Button--sm Button--inverseGreen js-download-button prompt_button doc_download" href="https://www.academia.edu/attachments/42454848/download_file?st=MTczMjQ2OTkxNiw4LjIyMi4yMDguMTQ2&s=work_strip"><i class="fa fa-arrow-circle-o-down fa-lg"></i><span class="u-textUppercase u-ml1x" data-content="button_text">Download</span></a></div></li><li class="InlineList-item"><ul class="InlineList InlineList--bordered u-ph0x"><li class="InlineList-item InlineList-item--bordered"><span class="InlineList-item-text">by&nbsp;<span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a class="u-tcGrayDark u-fw700" data-has-card-for-user="35745972" href="https://independent.academia.edu/BPolajzer">B. Polajzer</a><script data-card-contents-for-user="35745972" type="text/json">{"id":35745972,"first_name":"B.","last_name":"Polajzer","domain_name":"independent","page_name":"BPolajzer","display_name":"B. 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Polajzer","profile_url":"https://independent.academia.edu/BPolajzer?f_ri=7715","photo":"/images/s65_no_pic.png"}],"research_interests":[{"id":48,"name":"Engineering","url":"https://www.academia.edu/Documents/in/Engineering?f_ri=7715","nofollow":false},{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false},{"id":34754,"name":"Magnetic field","url":"https://www.academia.edu/Documents/in/Magnetic_field?f_ri=7715","nofollow":false},{"id":58906,"name":"Fourier Analysis","url":"https://www.academia.edu/Documents/in/Fourier_Analysis?f_ri=7715","nofollow":false},{"id":118582,"name":"Physical sciences","url":"https://www.academia.edu/Documents/in/Physical_sciences?f_ri=7715"},{"id":245193,"name":"Numerical Integration","url":"https://www.academia.edu/Documents/in/Numerical_Integration?f_ri=7715"},{"id":1247851,"name":"Experimental Method","url":"https://www.academia.edu/Documents/in/Experimental_Method?f_ri=7715"}]}, }) } })();</script></ul></li></ul></div></div><div class="u-borderBottom1 u-borderColorGrayLighter"><div class="clearfix u-pv7x u-mb0x js-work-card work_13364232 coauthored" data-work_id="13364232" itemscope="itemscope" itemtype="https://schema.org/ScholarlyArticle"><div class="header"><div class="title u-fontSerif u-fs22 u-lineHeight1_3"><a class="u-tcGrayDarkest js-work-link" href="https://www.academia.edu/13364232/Self_Assembled_Plasmonic_Nanoparticle_Clusters">Self-Assembled Plasmonic Nanoparticle Clusters</a></div></div><div class="u-pb4x u-mt3x"></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue Button--sm js-bookmark-button" data-academia-share="Work/13364232" data-share-source="work_strip" data-spinner="small_white_hide_contents"><i class="fa fa-plus"></i><span class="work-strip-link-text u-ml1x" data-content="button_text">Bookmark</span></a></div></li><li class="InlineList-item"><div class="download"><a id="113aebcc1a0fac740b7daf71568c2d7a" rel="nofollow" data-download="{&quot;attachment_id&quot;:45430273,&quot;asset_id&quot;:13364232,&quot;asset_type&quot;:&quot;Work&quot;,&quot;always_allow_download&quot;:false,&quot;track&quot;:null,&quot;button_location&quot;:&quot;work_strip&quot;,&quot;source&quot;:null,&quot;hide_modal&quot;:null}" class="Button Button--sm Button--inverseGreen js-download-button prompt_button doc_download" href="https://www.academia.edu/attachments/45430273/download_file?st=MTczMjQ2OTkxNiw4LjIyMi4yMDguMTQ2&s=work_strip"><i class="fa fa-arrow-circle-o-down fa-lg"></i><span class="u-textUppercase u-ml1x" data-content="button_text">Download</span></a></div></li><li class="InlineList-item"><ul class="InlineList InlineList--bordered u-ph0x"><li class="InlineList-item InlineList-item--bordered"><span class="InlineList-item-text">by&nbsp;<span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a class="u-tcGrayDark u-fw700" data-has-card-for-user="32475761" href="https://independent.academia.edu/JimingBao">Jiming Bao</a><script data-card-contents-for-user="32475761" type="text/json">{"id":32475761,"first_name":"Jiming","last_name":"Bao","domain_name":"independent","page_name":"JimingBao","display_name":"Jiming Bao","profile_url":"https://independent.academia.edu/JimingBao?f_ri=7715","photo":"/images/s65_no_pic.png"}</script></span></span><span class="u-displayInlineBlock InlineList-item-text">&nbsp;and&nbsp;<span class="u-textDecorationUnderline u-clickable InlineList-item-text js-work-more-authors-13364232">+1</span><div class="hidden js-additional-users-13364232"><div><span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a href="https://rice.academia.edu/PeterNordlander">Peter Nordlander</a></span></div></div></span><script>(function(){ var popoverSettings = { el: 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container = $(".js-percentile-work_13364232"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></li><li class="js-view-count-work_13364232 InlineList-item InlineList-item--bordered hidden"><div><span><span class="js-view-count view-count u-mr2x" data-work-id="13364232"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 13364232; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=13364232]").text(description); $(".js-view-count-work_13364232").attr('title', description).tooltip(); }); });</script></span><script>$(function() { $(".js-view-count-work_13364232").removeClass('hidden') })</script></div></li><li class="InlineList-item 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class="InlineList-item-text" data-has-card-for-ri="10018" href="https://www.academia.edu/Documents/in/Metamaterials">Metamaterials</a>,&nbsp;<script data-card-contents-for-ri="10018" type="text/json">{"id":10018,"name":"Metamaterials","url":"https://www.academia.edu/Documents/in/Metamaterials?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="11073" href="https://www.academia.edu/Documents/in/Self_Assembly">Self Assembly</a><script data-card-contents-for-ri="11073" type="text/json">{"id":11073,"name":"Self Assembly","url":"https://www.academia.edu/Documents/in/Self_Assembly?f_ri=7715","nofollow":false}</script></span></li><script>(function(){ if (true) { new Aedu.ResearchInterestListCard({ el: $('*[data-has-card-for-ri-list=13364232]'), work: {"id":13364232,"title":"Self-Assembled Plasmonic Nanoparticle 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Material","url":"https://www.academia.edu/Documents/in/Magnetic_Material?f_ri=7715"},{"id":666991,"name":"PATCH ANTENNA","url":"https://www.academia.edu/Documents/in/PATCH_ANTENNA?f_ri=7715"},{"id":882535,"name":"Substrates","url":"https://www.academia.edu/Documents/in/Substrates?f_ri=7715"},{"id":980017,"name":"Magnetic Permeability","url":"https://www.academia.edu/Documents/in/Magnetic_Permeability?f_ri=7715"},{"id":1237788,"name":"Electrical And Electronic Engineering","url":"https://www.academia.edu/Documents/in/Electrical_And_Electronic_Engineering?f_ri=7715"}]}, }) } })();</script></ul></li></ul></div></div><div class="u-borderBottom1 u-borderColorGrayLighter"><div class="clearfix u-pv7x u-mb0x js-work-card work_60852387" data-work_id="60852387" itemscope="itemscope" itemtype="https://schema.org/ScholarlyArticle"><div class="header"><div class="title u-fontSerif u-fs22 u-lineHeight1_3"><a class="u-tcGrayDarkest js-work-link" href="https://www.academia.edu/60852387/Structural_And_Magnetic_Characteristics_Of_Microwave_Sintered_Yttrium_Iron_Garnet_YIG_">Structural And Magnetic Characteristics Of Microwave Sintered Yttrium Iron Garnet (YIG)</a></div></div><div class="u-pb4x u-mt3x"><div class="summary u-fs14 u-fw300 u-lineHeight1_5 u-tcGrayDarkest"><div class="summarized">Yttrium iron garnet (YIG) is a synthetic Ferrimagnetic material. YIG is cubic in structure; having space group Ia3d. In YIG, out of 5 Fe 3+ ions, 3 Fe ions occupy tetrahedral site and 2 Fe ions occupy octahedral site. Difference in the... <a class="more_link u-tcGrayDark u-linkUnstyled" data-container=".work_60852387" data-show=".complete" data-hide=".summarized" data-more-link-behavior="true" href="#">more</a></div><div class="complete hidden">Yttrium iron garnet (YIG) is a synthetic Ferrimagnetic material. YIG is cubic in structure; having space group Ia3d. In YIG, out of 5 Fe 3+ ions, 3 Fe ions occupy tetrahedral site and 2 Fe ions occupy octahedral site. Difference in the spin orientation of the Fe 3+ ions present in tetrahedral and octahedral sites results in the origin of the magnetic properties of YIG. Yttrium iron garnet with the empirical formula Y 3 Fe 5 O 12 has been synthesized by regular ceramic route and sintering at 1200˚C for 30 minutes using microwave furnace. The structural and morphological characterization of the synthesized YIG are performed by X-ray diffractometer (XRD), and scanning electron microscopy (SEM). X-ray diffraction pattern revealed pure YIG phase as reported by Musa et al [1]. The crystallite size from the Scherrer equation is found to be 2.82Å. A saturation magnetization of 16.88emu/g is achieved by VSM.</div></div></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue Button--sm js-bookmark-button" data-academia-share="Work/60852387" data-share-source="work_strip" data-spinner="small_white_hide_contents"><i class="fa fa-plus"></i><span class="work-strip-link-text u-ml1x" data-content="button_text">Bookmark</span></a></div></li><li class="InlineList-item"><div class="download"><a id="34bb3e9b214f0345d2ada5ef84d04b4b" rel="nofollow" data-download="{&quot;attachment_id&quot;:74116462,&quot;asset_id&quot;:60852387,&quot;asset_type&quot;:&quot;Work&quot;,&quot;always_allow_download&quot;:false,&quot;track&quot;:null,&quot;button_location&quot;:&quot;work_strip&quot;,&quot;source&quot;:null,&quot;hide_modal&quot;:null}" class="Button Button--sm Button--inverseGreen js-download-button prompt_button doc_download" href="https://www.academia.edu/attachments/74116462/download_file?st=MTczMjQ2OTkxNiw4LjIyMi4yMDguMTQ2&s=work_strip"><i class="fa fa-arrow-circle-o-down fa-lg"></i><span class="u-textUppercase u-ml1x" data-content="button_text">Download</span></a></div></li><li class="InlineList-item"><ul class="InlineList InlineList--bordered u-ph0x"><li class="InlineList-item InlineList-item--bordered"><span class="InlineList-item-text">by&nbsp;<span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a class="u-tcGrayDark u-fw700" data-has-card-for-user="181235781" href="https://vit-in.academia.edu/AbhijeetNayak">Abhijeet Nayak</a><script data-card-contents-for-user="181235781" type="text/json">{"id":181235781,"first_name":"Abhijeet","last_name":"Nayak","domain_name":"vit-in","page_name":"AbhijeetNayak","display_name":"Abhijeet Nayak","profile_url":"https://vit-in.academia.edu/AbhijeetNayak?f_ri=7715","photo":"https://0.academia-photos.com/181235781/67591090/55960412/s65_abhijeet.nayak.jpg"}</script></span></span></li><li class="js-paper-rank-work_60852387 InlineList-item InlineList-item--bordered hidden"><span class="js-paper-rank-view hidden u-tcGrayDark" data-paper-rank-work-id="60852387"><i class="u-m1x fa fa-bar-chart"></i><strong class="js-paper-rank"></strong></span><script>$(function() { new Works.PaperRankView({ workId: 60852387, container: ".js-paper-rank-work_60852387", }); 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YIG is cubic in structure; having space group Ia3d. In YIG, out of 5 Fe 3+ ions, 3 Fe ions occupy tetrahedral site and 2 Fe ions occupy octahedral site. Difference in the spin orientation of the Fe 3+ ions present in tetrahedral and octahedral sites results in the origin of the magnetic properties of YIG. Yttrium iron garnet with the empirical formula Y 3 Fe 5 O 12 has been synthesized by regular ceramic route and sintering at 1200˚C for 30 minutes using microwave furnace. The structural and morphological characterization of the synthesized YIG are performed by X-ray diffractometer (XRD), and scanning electron microscopy (SEM). X-ray diffraction pattern revealed pure YIG phase as reported by Musa et al [1]. The crystallite size from the Scherrer equation is found to be 2.82Å. A saturation magnetization of 16.88emu/g is achieved by VSM.","downloadable_attachments":[{"id":74116462,"asset_id":60852387,"asset_type":"Work","always_allow_download":false}],"ordered_authors":[{"id":181235781,"first_name":"Abhijeet","last_name":"Nayak","domain_name":"vit-in","page_name":"AbhijeetNayak","display_name":"Abhijeet Nayak","profile_url":"https://vit-in.academia.edu/AbhijeetNayak?f_ri=7715","photo":"https://0.academia-photos.com/181235781/67591090/55960412/s65_abhijeet.nayak.jpg"}],"research_interests":[{"id":511,"name":"Materials Science","url":"https://www.academia.edu/Documents/in/Materials_Science?f_ri=7715","nofollow":false},{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false},{"id":7871,"name":"FTIR spectroscopy","url":"https://www.academia.edu/Documents/in/FTIR_spectroscopy?f_ri=7715","nofollow":false},{"id":32153,"name":"Structural 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The successfully synthesized material is used as adsorbent (MM/SiO2/MBI) in the Adsorpi Au (III) process.... <a class="more_link u-tcGrayDark u-linkUnstyled" data-container=".work_43484502" data-show=".complete" data-hide=".summarized" data-more-link-behavior="true" href="#">more</a></div><div class="complete hidden">The functionalized silica coating mercapto on iron sand magnetic material (MM/SiO2/MBI)has been done through sol-gel process. The successfully synthesized material is used as adsorbent (MM/SiO2/MBI) in the Adsorpi Au (III) process. Material characterization is carried out with an adsorbent stability test against acids. Adsorption is performed in a batch system and the unadsorped Au (III) ion is analyzed with the Atomic Absorption Spectrophotometer (AAS). Characterization results indicate the synthesis of PB/SiO2-MBI adsorbent has been successfully performed. The coating of iron sand magnetic material enhances stability to acid. ADsorbent (MM/SiO2/MBI) is capable of adjudisorate ion Au (III) with the highest adsorption occurring at pH 1. Kinetics review indicates that the adsorption of the ion (III) is following the second-order pseudo kinetics with a value of k 3.57 × 10-3 g/mg. Minute and adsorption isotherm follows the isotherm pattern of Langmuir with an adsorption capacity of 125 mg/g.</div></div></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue Button--sm js-bookmark-button" data-academia-share="Work/43484502" data-share-source="work_strip" data-spinner="small_white_hide_contents"><i class="fa fa-plus"></i><span class="work-strip-link-text u-ml1x" data-content="button_text">Bookmark</span></a></div></li><li class="InlineList-item"><div class="download"><a id="103af5abccaf4b79f720b1f518b0865e" rel="nofollow" data-download="{&quot;attachment_id&quot;:63793217,&quot;asset_id&quot;:43484502,&quot;asset_type&quot;:&quot;Work&quot;,&quot;always_allow_download&quot;:false,&quot;track&quot;:null,&quot;button_location&quot;:&quot;work_strip&quot;,&quot;source&quot;:null,&quot;hide_modal&quot;:null}" class="Button Button--sm Button--inverseGreen js-download-button prompt_button doc_download" href="https://www.academia.edu/attachments/63793217/download_file?st=MTczMjQ2OTkxNiw4LjIyMi4yMDguMTQ2&s=work_strip"><i class="fa fa-arrow-circle-o-down fa-lg"></i><span class="u-textUppercase u-ml1x" data-content="button_text">Download</span></a></div></li><li class="InlineList-item"><ul class="InlineList InlineList--bordered u-ph0x"><li class="InlineList-item InlineList-item--bordered"><span class="InlineList-item-text">by&nbsp;<span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a class="u-tcGrayDark u-fw700" data-has-card-for-user="21238714" href="https://independent.academia.edu/MartasianaKarbeka">Martasiana Karbeka</a><script data-card-contents-for-user="21238714" type="text/json">{"id":21238714,"first_name":"Martasiana","last_name":"Karbeka","domain_name":"independent","page_name":"MartasianaKarbeka","display_name":"Martasiana Karbeka","profile_url":"https://independent.academia.edu/MartasianaKarbeka?f_ri=7715","photo":"https://0.academia-photos.com/21238714/6516188/35519031/s65_martasiana.karbeka.jpg"}</script></span></span></li><li class="js-paper-rank-work_43484502 InlineList-item InlineList-item--bordered hidden"><span class="js-paper-rank-view hidden u-tcGrayDark" data-paper-rank-work-id="43484502"><i class="u-m1x fa fa-bar-chart"></i><strong class="js-paper-rank"></strong></span><script>$(function() { new Works.PaperRankView({ workId: 43484502, container: ".js-paper-rank-work_43484502", }); 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$(".js-view-count[data-work-id=43484502]").text(description); $(".js-view-count-work_43484502").attr('title', description).tooltip(); }); });</script></span><script>$(function() { $(".js-view-count-work_43484502").removeClass('hidden') })</script></div></li><li class="InlineList-item u-positionRelative" style="max-width: 250px"><div class="u-positionAbsolute" data-has-card-for-ri-list="43484502"><i class="fa fa-tag InlineList-item-icon u-positionRelative"></i>&nbsp;&nbsp;<a class="InlineList-item-text u-positionRelative">2</a>&nbsp;&nbsp;</div><span class="InlineList-item-text u-textTruncate u-pl9x"><a class="InlineList-item-text" data-has-card-for-ri="7715" href="https://www.academia.edu/Documents/in/Magnetic_Materials">Magnetic Materials</a>,&nbsp;<script data-card-contents-for-ri="7715" type="text/json">{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="510090" href="https://www.academia.edu/Documents/in/Magnetism_and_Magnetic_Materials">Magnetism and Magnetic Materials</a><script data-card-contents-for-ri="510090" type="text/json">{"id":510090,"name":"Magnetism and Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetism_and_Magnetic_Materials?f_ri=7715","nofollow":false}</script></span></li><script>(function(){ if (true) { new Aedu.ResearchInterestListCard({ el: $('*[data-has-card-for-ri-list=43484502]'), work: {"id":43484502,"title":"Coating of mercapto modified silica on iron sand magnetic material for Au(III) adsorption in aqueous solution Coating of mercapto modified silica on iron sand magnetic material for Au(III) adsorption in aqueous solution","created_at":"2020-06-30T20:30:38.997-07:00","url":"https://www.academia.edu/43484502/Coating_of_mercapto_modified_silica_on_iron_sand_magnetic_material_for_Au_III_adsorption_in_aqueous_solution_Coating_of_mercapto_modified_silica_on_iron_sand_magnetic_material_for_Au_III_adsorption_in_aqueous_solution?f_ri=7715","dom_id":"work_43484502","summary":"The functionalized silica coating mercapto on iron sand magnetic material (MM/SiO2/MBI)has been done through sol-gel process. The successfully synthesized material is used as adsorbent (MM/SiO2/MBI) in the Adsorpi Au (III) process. Material characterization is carried out with an adsorbent stability test against acids. Adsorption is performed in a batch system and the unadsorped Au (III) ion is analyzed with the Atomic Absorption Spectrophotometer (AAS). Characterization results indicate the synthesis of PB/SiO2-MBI adsorbent has been successfully performed. The coating of iron sand magnetic material enhances stability to acid. ADsorbent (MM/SiO2/MBI) is capable of adjudisorate ion Au (III) with the highest adsorption occurring at pH 1. Kinetics review indicates that the adsorption of the ion (III) is following the second-order pseudo kinetics with a value of k 3.57 × 10-3 g/mg. Minute and adsorption isotherm follows the isotherm pattern of Langmuir with an adsorption capacity of 125 mg/g.","downloadable_attachments":[{"id":63793217,"asset_id":43484502,"asset_type":"Work","always_allow_download":false}],"ordered_authors":[{"id":21238714,"first_name":"Martasiana","last_name":"Karbeka","domain_name":"independent","page_name":"MartasianaKarbeka","display_name":"Martasiana Karbeka","profile_url":"https://independent.academia.edu/MartasianaKarbeka?f_ri=7715","photo":"https://0.academia-photos.com/21238714/6516188/35519031/s65_martasiana.karbeka.jpg"}],"research_interests":[{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false},{"id":510090,"name":"Magnetism and Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetism_and_Magnetic_Materials?f_ri=7715","nofollow":false}]}, }) } })();</script></ul></li></ul></div></div><div class="u-borderBottom1 u-borderColorGrayLighter"><div class="clearfix u-pv7x u-mb0x js-work-card work_2447745" data-work_id="2447745" itemscope="itemscope" itemtype="https://schema.org/ScholarlyArticle"><div class="header"><div class="title u-fontSerif u-fs22 u-lineHeight1_3"><a class="u-tcGrayDarkest js-work-link" href="https://www.academia.edu/2447745/Magnetic_Capsules_for_NMR_Imaging_Effect_of_Magnetic_Nanoparticles_Spatial_Distribution_and_Aggregation">Magnetic Capsules for NMR Imaging: Effect of Magnetic Nanoparticles Spatial Distribution and Aggregation</a></div></div><div class="u-pb4x u-mt3x"><div class="summary u-fs14 u-fw300 u-lineHeight1_5 u-tcGrayDarkest"><div class="summarized">Magnetic and NMR relaxivity properties of γ-Fe2O3 nanoparticles embedded into the walls of polyelectrolyte multilayer capsules and freely dispersed in a sodium borate buffer solution have been investigated. The different geometric... <a class="more_link u-tcGrayDark u-linkUnstyled" data-container=".work_2447745" data-show=".complete" data-hide=".summarized" data-more-link-behavior="true" href="#">more</a></div><div class="complete hidden">Magnetic and NMR relaxivity properties of γ-Fe2O3 nanoparticles embedded into the walls of polyelectrolyte multilayer capsules and freely dispersed in a sodium borate buffer solution have been investigated. The different geometric distribution of both configurations provides the opportunity to study the relationship of water accessibility and magnetic properties of particles on the NMR relaxivity. Changes in their blocking temperature and average dipolar field were modeled as a function of packing fraction in the ensemble of free and entrapped nanoparticles. For free nanoparticles with relatively low concentration, relaxivity values increase with packing fraction according to an increase in the dipolar field and larger water accessibility. However, for embedded nanoparticles in the capsule wall, packing fractions should be limited to optimize the efficiency of this system as magnetic resonance imaging (MRI) contrast agent.</div></div></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue Button--sm js-bookmark-button" data-academia-share="Work/2447745" data-share-source="work_strip" data-spinner="small_white_hide_contents"><i class="fa fa-plus"></i><span class="work-strip-link-text u-ml1x" data-content="button_text">Bookmark</span></a></div></li><li class="InlineList-item"><div class="download"><a id="99890a663ecf266a530891f9f81006e8" rel="nofollow" data-download="{&quot;attachment_id&quot;:30470842,&quot;asset_id&quot;:2447745,&quot;asset_type&quot;:&quot;Work&quot;,&quot;always_allow_download&quot;:false,&quot;track&quot;:null,&quot;button_location&quot;:&quot;work_strip&quot;,&quot;source&quot;:null,&quot;hide_modal&quot;:null}" class="Button Button--sm Button--inverseGreen js-download-button prompt_button doc_download" href="https://www.academia.edu/attachments/30470842/download_file?st=MTczMjQ2OTkxNiw4LjIyMi4yMDguMTQ2&s=work_strip"><i class="fa fa-arrow-circle-o-down fa-lg"></i><span class="u-textUppercase u-ml1x" data-content="button_text">Download</span></a></div></li><li class="InlineList-item"><ul class="InlineList InlineList--bordered u-ph0x"><li class="InlineList-item InlineList-item--bordered"><span class="InlineList-item-text">by&nbsp;<span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a class="u-tcGrayDark u-fw700" data-has-card-for-user="2935845" href="https://ucm.academia.edu/PatriciadelaPresa">Patricia de la Presa</a><script data-card-contents-for-user="2935845" type="text/json">{"id":2935845,"first_name":"Patricia","last_name":"de la Presa","domain_name":"ucm","page_name":"PatriciadelaPresa","display_name":"Patricia de la Presa","profile_url":"https://ucm.academia.edu/PatriciadelaPresa?f_ri=7715","photo":"https://0.academia-photos.com/2935845/1119195/1401175/s65_patricia.de_la_presa.jpg"}</script></span></span></li><li class="js-paper-rank-work_2447745 InlineList-item InlineList-item--bordered hidden"><span class="js-paper-rank-view hidden u-tcGrayDark" data-paper-rank-work-id="2447745"><i class="u-m1x fa fa-bar-chart"></i><strong class="js-paper-rank"></strong></span><script>$(function() { new Works.PaperRankView({ workId: 2447745, container: ".js-paper-rank-work_2447745", }); 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$(".js-view-count[data-work-id=2447745]").text(description); $(".js-view-count-work_2447745").attr('title', description).tooltip(); }); });</script></span><script>$(function() { $(".js-view-count-work_2447745").removeClass('hidden') })</script></div></li><li class="InlineList-item u-positionRelative" style="max-width: 250px"><div class="u-positionAbsolute" data-has-card-for-ri-list="2447745"><i class="fa fa-tag InlineList-item-icon u-positionRelative"></i>&nbsp;&nbsp;<a class="InlineList-item-text u-positionRelative">10</a>&nbsp;&nbsp;</div><span class="InlineList-item-text u-textTruncate u-pl10x"><a class="InlineList-item-text" data-has-card-for-ri="7715" href="https://www.academia.edu/Documents/in/Magnetic_Materials">Magnetic Materials</a>,&nbsp;<script data-card-contents-for-ri="7715" type="text/json">{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="8928" href="https://www.academia.edu/Documents/in/MRI">MRI</a>,&nbsp;<script data-card-contents-for-ri="8928" type="text/json">{"id":8928,"name":"MRI","url":"https://www.academia.edu/Documents/in/MRI?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="12134" href="https://www.academia.edu/Documents/in/NMR_Spectroscopy">NMR Spectroscopy</a>,&nbsp;<script data-card-contents-for-ri="12134" type="text/json">{"id":12134,"name":"NMR Spectroscopy","url":"https://www.academia.edu/Documents/in/NMR_Spectroscopy?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="52017" href="https://www.academia.edu/Documents/in/Magnetic_Nanoparticles_Used_in_Cancer_Therapy">Magnetic Nanoparticles Used in Cancer Therapy</a><script data-card-contents-for-ri="52017" type="text/json">{"id":52017,"name":"Magnetic Nanoparticles Used in Cancer Therapy","url":"https://www.academia.edu/Documents/in/Magnetic_Nanoparticles_Used_in_Cancer_Therapy?f_ri=7715","nofollow":false}</script></span></li><script>(function(){ if (true) { new Aedu.ResearchInterestListCard({ el: $('*[data-has-card-for-ri-list=2447745]'), work: {"id":2447745,"title":"Magnetic Capsules for NMR Imaging: Effect of Magnetic Nanoparticles Spatial Distribution and Aggregation","created_at":"2013-01-22T18:26:42.741-08:00","url":"https://www.academia.edu/2447745/Magnetic_Capsules_for_NMR_Imaging_Effect_of_Magnetic_Nanoparticles_Spatial_Distribution_and_Aggregation?f_ri=7715","dom_id":"work_2447745","summary":"Magnetic and NMR relaxivity properties of γ-Fe2O3 nanoparticles embedded into the walls of polyelectrolyte multilayer capsules and freely dispersed in a sodium borate buffer solution have been investigated. The different geometric distribution of both configurations provides the opportunity to study the relationship of water accessibility and magnetic properties of particles on the NMR relaxivity. Changes in their blocking temperature and average dipolar field were modeled as a function of packing fraction in the ensemble of free and entrapped nanoparticles. For free nanoparticles with relatively low concentration, relaxivity values increase with packing fraction according to an increase in the dipolar field and larger water accessibility. However, for embedded nanoparticles in the capsule wall, packing fractions should be limited to optimize the efficiency of this system as magnetic resonance imaging (MRI) contrast agent.","downloadable_attachments":[{"id":30470842,"asset_id":2447745,"asset_type":"Work","always_allow_download":false}],"ordered_authors":[{"id":2935845,"first_name":"Patricia","last_name":"de la Presa","domain_name":"ucm","page_name":"PatriciadelaPresa","display_name":"Patricia de la Presa","profile_url":"https://ucm.academia.edu/PatriciadelaPresa?f_ri=7715","photo":"https://0.academia-photos.com/2935845/1119195/1401175/s65_patricia.de_la_presa.jpg"}],"research_interests":[{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false},{"id":8928,"name":"MRI","url":"https://www.academia.edu/Documents/in/MRI?f_ri=7715","nofollow":false},{"id":12134,"name":"NMR Spectroscopy","url":"https://www.academia.edu/Documents/in/NMR_Spectroscopy?f_ri=7715","nofollow":false},{"id":52017,"name":"Magnetic Nanoparticles Used in Cancer Therapy","url":"https://www.academia.edu/Documents/in/Magnetic_Nanoparticles_Used_in_Cancer_Therapy?f_ri=7715","nofollow":false},{"id":79131,"name":"Magnetic nanoparticles","url":"https://www.academia.edu/Documents/in/Magnetic_nanoparticles?f_ri=7715"},{"id":574232,"name":"Polyelectrolyte Multilayer","url":"https://www.academia.edu/Documents/in/Polyelectrolyte_Multilayer?f_ri=7715"},{"id":770256,"name":"Magnetic Dipolar Field","url":"https://www.academia.edu/Documents/in/Magnetic_Dipolar_Field?f_ri=7715"},{"id":770258,"name":"Packing Fraction","url":"https://www.academia.edu/Documents/in/Packing_Fraction?f_ri=7715"},{"id":770259,"name":"Relaxivity","url":"https://www.academia.edu/Documents/in/Relaxivity?f_ri=7715"},{"id":770260,"name":"Constrant Agents","url":"https://www.academia.edu/Documents/in/Constrant_Agents?f_ri=7715"}]}, }) } })();</script></ul></li></ul></div></div><div class="u-borderBottom1 u-borderColorGrayLighter"><div class="clearfix u-pv7x u-mb0x js-work-card work_60512934" data-work_id="60512934" itemscope="itemscope" itemtype="https://schema.org/ScholarlyArticle"><div class="header"><div class="title u-fontSerif u-fs22 u-lineHeight1_3"><a class="u-tcGrayDarkest js-work-link" href="https://www.academia.edu/60512934/Current_sensors_using_magnetic_materials">Current sensors using magnetic materials</a></div></div><div class="u-pb4x u-mt3x"><div class="summary u-fs14 u-fw300 u-lineHeight1_5 u-tcGrayDarkest"><div class="summarized">Precise contactless DC and AC magnetic sensors are required by car industry, chemical industry, for measurement of power and many other applications. The emphasis is given on current sensors based on magnetic materials, but other methods... <a class="more_link u-tcGrayDark u-linkUnstyled" data-container=".work_60512934" data-show=".complete" data-hide=".summarized" data-more-link-behavior="true" href="#">more</a></div><div class="complete hidden">Precise contactless DC and AC magnetic sensors are required by car industry, chemical industry, for measurement of power and many other applications. The emphasis is given on current sensors based on magnetic materials, but other methods are also mentioned for ...</div></div></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue Button--sm js-bookmark-button" data-academia-share="Work/60512934" data-share-source="work_strip" data-spinner="small_white_hide_contents"><i class="fa fa-plus"></i><span class="work-strip-link-text u-ml1x" data-content="button_text">Bookmark</span></a></div></li><li class="InlineList-item"><div class="download"><a id="53b77e9cf452cee60c1dadbd2ebcccd6" rel="nofollow" data-download="{&quot;attachment_id&quot;:73924568,&quot;asset_id&quot;:60512934,&quot;asset_type&quot;:&quot;Work&quot;,&quot;always_allow_download&quot;:false,&quot;track&quot;:null,&quot;button_location&quot;:&quot;work_strip&quot;,&quot;source&quot;:null,&quot;hide_modal&quot;:null}" class="Button Button--sm Button--inverseGreen js-download-button prompt_button doc_download" href="https://www.academia.edu/attachments/73924568/download_file?st=MTczMjQ2OTkxNiw4LjIyMi4yMDguMTQ2&s=work_strip"><i class="fa fa-arrow-circle-o-down fa-lg"></i><span class="u-textUppercase u-ml1x" data-content="button_text">Download</span></a></div></li><li class="InlineList-item"><ul class="InlineList InlineList--bordered u-ph0x"><li class="InlineList-item InlineList-item--bordered"><span class="InlineList-item-text">by&nbsp;<span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a class="u-tcGrayDark u-fw700" data-has-card-for-user="145476160" href="https://cvut.academia.edu/PavelRipka">Pavel Ripka</a><script data-card-contents-for-user="145476160" type="text/json">{"id":145476160,"first_name":"Pavel","last_name":"Ripka","domain_name":"cvut","page_name":"PavelRipka","display_name":"Pavel Ripka","profile_url":"https://cvut.academia.edu/PavelRipka?f_ri=7715","photo":"https://0.academia-photos.com/145476160/158594993/148243746/s65_pavel.ripka.jpeg"}</script></span></span></li><li class="js-paper-rank-work_60512934 InlineList-item InlineList-item--bordered hidden"><span class="js-paper-rank-view hidden u-tcGrayDark" data-paper-rank-work-id="60512934"><i class="u-m1x fa fa-bar-chart"></i><strong class="js-paper-rank"></strong></span><script>$(function() { new Works.PaperRankView({ workId: 60512934, container: ".js-paper-rank-work_60512934", }); 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The emphasis is given on current sensors based on magnetic materials, but other methods are also mentioned for ...","downloadable_attachments":[{"id":73924568,"asset_id":60512934,"asset_type":"Work","always_allow_download":false}],"ordered_authors":[{"id":145476160,"first_name":"Pavel","last_name":"Ripka","domain_name":"cvut","page_name":"PavelRipka","display_name":"Pavel Ripka","profile_url":"https://cvut.academia.edu/PavelRipka?f_ri=7715","photo":"https://0.academia-photos.com/145476160/158594993/148243746/s65_pavel.ripka.jpeg"}],"research_interests":[{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false},{"id":263152,"name":"Optical physics","url":"https://www.academia.edu/Documents/in/Optical_physics?f_ri=7715","nofollow":false},{"id":416537,"name":"Chemical Industry","url":"https://www.academia.edu/Documents/in/Chemical_Industry?f_ri=7715","nofollow":false},{"id":2240938,"name":"Magnetic Sensor","url":"https://www.academia.edu/Documents/in/Magnetic_Sensor?f_ri=7715","nofollow":false},{"id":2282000,"name":"Current Transformer","url":"https://www.academia.edu/Documents/in/Current_Transformer?f_ri=7715"}]}, }) } })();</script></ul></li></ul></div></div><div class="u-borderBottom1 u-borderColorGrayLighter"><div class="clearfix u-pv7x u-mb0x js-work-card work_56188636" data-work_id="56188636" itemscope="itemscope" itemtype="https://schema.org/ScholarlyArticle"><div class="header"><div class="title u-fontSerif u-fs22 u-lineHeight1_3"><a class="u-tcGrayDarkest js-work-link" href="https://www.academia.edu/56188636/An_ATP_EMTP_Based_Model_for_Analysis_of_Shielding_Properties_of_Ferromagnetic_Cable_Sheaths">An ATP-EMTP-Based Model for Analysis of Shielding Properties of Ferromagnetic Cable Sheaths</a></div></div><div class="u-pb4x u-mt3x"></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a 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}) } })();</script></ul></li></ul></div></div><div class="u-borderBottom1 u-borderColorGrayLighter"><div class="clearfix u-pv7x u-mb0x js-work-card work_41186939" data-work_id="41186939" itemscope="itemscope" itemtype="https://schema.org/ScholarlyArticle"><div class="header"><div class="title u-fontSerif u-fs22 u-lineHeight1_3"><a class="u-tcGrayDarkest js-work-link" href="https://www.academia.edu/41186939/Journal_of_Inorganic_and_Organometallic_Polymers_and_Materials_Tetrazole_Based_Porous_Metal_Organic_Framework_MOF_Topological_Analysis_and_Dye_Adsorption_Properties">Journal of Inorganic and Organometallic Polymers and Materials Tetrazole Based Porous Metal Organic Framework (MOF): Topological Analysis and Dye Adsorption Properties</a></div></div><div class="u-pb4x u-mt3x"><div class="summary u-fs14 u-fw300 u-lineHeight1_5 u-tcGrayDarkest"><div class="summarized">A tetrazole based metal organic framework [Cu(Metet)]n (MOF-1) (MetetH = 5-methyl-1H-tetrazole) has been prepared under solvothermal condition using sodium azide and nitrile in presence of CuCl2·2H2O. The crystalline product thus obtained... <a class="more_link u-tcGrayDark u-linkUnstyled" data-container=".work_41186939" data-show=".complete" data-hide=".summarized" data-more-link-behavior="true" href="#">more</a></div><div class="complete hidden">A tetrazole based metal organic framework [Cu(Metet)]n (MOF-1) (MetetH = 5-methyl-1H-tetrazole) has been prepared under solvothermal condition using sodium azide and nitrile in presence of CuCl2·2H2O. The crystalline product thus obtained was characterized by spectral (FTIR, UV–visible and fluorescence) and single crystal X-ray diffraction analysis. Tetrazole ligand is formed in situ by the reaction of azide and nitrile used. X-ray data confirm the tetrahedral geometry around the Cu(II) ion where all the four coordination sites are provided by four N of the four different ligand (Metet). MOF-1 has trigonal crystal system with R-3 m space group. Topological analysis of MOF-1 shows 4,4-c binodal net with uncommon ptr topology and stoichiometry, (4-c)(4-c). The detailed structural analysis reveals the porous nature of the MOF with channel of dimensions, Rf = 0.6 Å and Rfi = 2 Å. Further, the present MOF shows excellent adsorption properties towards organic dye, Methylene blue (MB) and thus can be employed as a good adsorbent for organic pollutants to remove MB from waste water. The possible rationale behind the dye adsorption is the porous nature of the MOF-1.</div></div></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue Button--sm js-bookmark-button" data-academia-share="Work/41186939" data-share-source="work_strip" data-spinner="small_white_hide_contents"><i class="fa fa-plus"></i><span class="work-strip-link-text u-ml1x" data-content="button_text">Bookmark</span></a></div></li><li class="InlineList-item"><div class="download"><a id="06db082c9f836e1c2896fadb4f19a9da" rel="nofollow" data-download="{&quot;attachment_id&quot;:61427120,&quot;asset_id&quot;:41186939,&quot;asset_type&quot;:&quot;Work&quot;,&quot;always_allow_download&quot;:false,&quot;track&quot;:null,&quot;button_location&quot;:&quot;work_strip&quot;,&quot;source&quot;:null,&quot;hide_modal&quot;:null}" class="Button Button--sm Button--inverseGreen js-download-button prompt_button doc_download" href="https://www.academia.edu/attachments/61427120/download_file?st=MTczMjQ2OTkxNiw4LjIyMi4yMDguMTQ2&s=work_strip"><i class="fa fa-arrow-circle-o-down fa-lg"></i><span class="u-textUppercase u-ml1x" data-content="button_text">Download</span></a></div></li><li class="InlineList-item"><ul class="InlineList InlineList--bordered u-ph0x"><li class="InlineList-item InlineList-item--bordered"><span class="InlineList-item-text">by&nbsp;<span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a class="u-tcGrayDark u-fw700" data-has-card-for-user="102307044" href="https://independent.academia.edu/KhanMShahnawaz">M. 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The crystalline product thus obtained was characterized by spectral (FTIR, UV–visible and fluorescence) and single crystal X-ray diffraction analysis. Tetrazole ligand is formed in situ by the reaction of azide and nitrile used. X-ray data confirm the tetrahedral geometry around the Cu(II) ion where all the four coordination sites are provided by four N of the four different ligand (Metet). MOF-1 has trigonal crystal system with R-3 m space group. Topological analysis of MOF-1 shows 4,4-c binodal net with uncommon ptr topology and stoichiometry, (4-c)(4-c). The detailed structural analysis reveals the porous nature of the MOF with channel of dimensions, Rf = 0.6 Å and Rfi = 2 Å. Further, the present MOF shows excellent adsorption properties towards organic dye, Methylene blue (MB) and thus can be employed as a good adsorbent for organic pollutants to remove MB from waste water. The possible rationale behind the dye adsorption is the porous nature of the MOF-1.","downloadable_attachments":[{"id":61427120,"asset_id":41186939,"asset_type":"Work","always_allow_download":false}],"ordered_authors":[{"id":102307044,"first_name":"M. Shahnawaz","last_name":"Khan","domain_name":"independent","page_name":"KhanMShahnawaz","display_name":"M. Shahnawaz Khan","profile_url":"https://independent.academia.edu/KhanMShahnawaz?f_ri=7715","photo":"https://0.academia-photos.com/102307044/22574014/31418071/s65_m._shahnawaz.khan.jpg"}],"research_interests":[{"id":523,"name":"Chemistry","url":"https://www.academia.edu/Documents/in/Chemistry?f_ri=7715","nofollow":false},{"id":530,"name":"Inorganic Chemistry","url":"https://www.academia.edu/Documents/in/Inorganic_Chemistry?f_ri=7715","nofollow":false},{"id":4523,"name":"Water quality","url":"https://www.academia.edu/Documents/in/Water_quality?f_ri=7715","nofollow":false},{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false},{"id":9991,"name":"Wastewater Treatment","url":"https://www.academia.edu/Documents/in/Wastewater_Treatment?f_ri=7715"},{"id":39499,"name":"Porous Materials","url":"https://www.academia.edu/Documents/in/Porous_Materials?f_ri=7715"},{"id":68315,"name":"Porosity","url":"https://www.academia.edu/Documents/in/Porosity?f_ri=7715"},{"id":74043,"name":"Waste water treatment","url":"https://www.academia.edu/Documents/in/Waste_water_treatment?f_ri=7715"},{"id":113095,"name":"Adsorption and wastewater treatment","url":"https://www.academia.edu/Documents/in/Adsorption_and_wastewater_treatment?f_ri=7715"},{"id":146066,"name":"Natural Dye","url":"https://www.academia.edu/Documents/in/Natural_Dye?f_ri=7715"},{"id":517752,"name":"Metal Organic Frameworks (MOFs)","url":"https://www.academia.edu/Documents/in/Metal_Organic_Frameworks_MOFs_?f_ri=7715"}]}, }) } })();</script></ul></li></ul></div></div><div class="u-borderBottom1 u-borderColorGrayLighter"><div class="clearfix u-pv7x u-mb0x js-work-card work_997350" data-work_id="997350" itemscope="itemscope" itemtype="https://schema.org/ScholarlyArticle"><div class="header"><div class="title 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$(".js-view-count[data-work-id=53556605]").text(description); $(".js-view-count-work_53556605").attr('title', description).tooltip(); }); });</script></span><script>$(function() { $(".js-view-count-work_53556605").removeClass('hidden') })</script></div></li><li class="InlineList-item u-positionRelative" style="max-width: 250px"><div class="u-positionAbsolute" data-has-card-for-ri-list="53556605"><i class="fa fa-tag InlineList-item-icon u-positionRelative"></i>&nbsp;&nbsp;<a class="InlineList-item-text u-positionRelative">20</a>&nbsp;&nbsp;</div><span class="InlineList-item-text u-textTruncate u-pl10x"><a class="InlineList-item-text" data-has-card-for-ri="48" href="https://www.academia.edu/Documents/in/Engineering">Engineering</a>,&nbsp;<script data-card-contents-for-ri="48" type="text/json">{"id":48,"name":"Engineering","url":"https://www.academia.edu/Documents/in/Engineering?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="988" href="https://www.academia.edu/Documents/in/Design">Design</a>,&nbsp;<script data-card-contents-for-ri="988" type="text/json">{"id":988,"name":"Design","url":"https://www.academia.edu/Documents/in/Design?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="7715" href="https://www.academia.edu/Documents/in/Magnetic_Materials">Magnetic Materials</a>,&nbsp;<script data-card-contents-for-ri="7715" type="text/json">{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="12147" href="https://www.academia.edu/Documents/in/Finite_element_method">Finite element method</a><script data-card-contents-for-ri="12147" type="text/json">{"id":12147,"name":"Finite element method","url":"https://www.academia.edu/Documents/in/Finite_element_method?f_ri=7715","nofollow":false}</script></span></li><script>(function(){ if (true) { new Aedu.ResearchInterestListCard({ el: $('*[data-has-card-for-ri-list=53556605]'), work: {"id":53556605,"title":"Eddy-current coupling with slotted conductor disk","created_at":"2021-09-27T12:22:18.051-07:00","url":"https://www.academia.edu/53556605/Eddy_current_coupling_with_slotted_conductor_disk?f_ri=7715","dom_id":"work_53556605","summary":null,"downloadable_attachments":[{"id":70345430,"asset_id":53556605,"asset_type":"Work","always_allow_download":false}],"ordered_authors":[{"id":63449293,"first_name":"Michael","last_name":"Lampérth","domain_name":"independent","page_name":"MichaelLampérth","display_name":"Michael Lampérth","profile_url":"https://independent.academia.edu/MichaelLamp%C3%A9rth?f_ri=7715","photo":"/images/s65_no_pic.png"}],"research_interests":[{"id":48,"name":"Engineering","url":"https://www.academia.edu/Documents/in/Engineering?f_ri=7715","nofollow":false},{"id":988,"name":"Design","url":"https://www.academia.edu/Documents/in/Design?f_ri=7715","nofollow":false},{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false},{"id":12147,"name":"Finite element method","url":"https://www.academia.edu/Documents/in/Finite_element_method?f_ri=7715","nofollow":false},{"id":34754,"name":"Magnetic field","url":"https://www.academia.edu/Documents/in/Magnetic_field?f_ri=7715"},{"id":49273,"name":"Finite Element Analysis","url":"https://www.academia.edu/Documents/in/Finite_Element_Analysis?f_ri=7715"},{"id":57518,"name":"Conception","url":"https://www.academia.edu/Documents/in/Conception?f_ri=7715"},{"id":118582,"name":"Physical sciences","url":"https://www.academia.edu/Documents/in/Physical_sciences?f_ri=7715"},{"id":133975,"name":"Magnetic Properties","url":"https://www.academia.edu/Documents/in/Magnetic_Properties?f_ri=7715"},{"id":198557,"name":"Throughput","url":"https://www.academia.edu/Documents/in/Throughput?f_ri=7715"},{"id":268342,"name":"Eddy Current","url":"https://www.academia.edu/Documents/in/Eddy_Current?f_ri=7715"},{"id":386557,"name":"Finite Element Model","url":"https://www.academia.edu/Documents/in/Finite_Element_Model?f_ri=7715"},{"id":416294,"name":"Magnetic Fields","url":"https://www.academia.edu/Documents/in/Magnetic_Fields?f_ri=7715"},{"id":736620,"name":"Torque","url":"https://www.academia.edu/Documents/in/Torque?f_ri=7715"},{"id":745534,"name":"Lorentz Force","url":"https://www.academia.edu/Documents/in/Lorentz_Force?f_ri=7715"},{"id":796093,"name":"Conductors","url":"https://www.academia.edu/Documents/in/Conductors?f_ri=7715"},{"id":925676,"name":"Axis of Rotation","url":"https://www.academia.edu/Documents/in/Axis_of_Rotation?f_ri=7715"},{"id":1247007,"name":"Air Gaps","url":"https://www.academia.edu/Documents/in/Air_Gaps?f_ri=7715"},{"id":1249261,"name":"Speed Control","url":"https://www.academia.edu/Documents/in/Speed_Control?f_ri=7715"},{"id":3313486,"name":"Couplings","url":"https://www.academia.edu/Documents/in/Couplings?f_ri=7715"}]}, }) } })();</script></ul></li></ul></div></div><div class="u-borderBottom1 u-borderColorGrayLighter"><div class="clearfix u-pv7x u-mb0x js-work-card work_9937643" data-work_id="9937643" itemscope="itemscope" itemtype="https://schema.org/ScholarlyArticle"><div class="header"><div class="title u-fontSerif u-fs22 u-lineHeight1_3"><a class="u-tcGrayDarkest js-work-link" href="https://www.academia.edu/9937643/Electro_Dynamic_Tethers">Electro Dynamic Tethers</a></div></div><div class="u-pb4x u-mt3x"><div class="summary u-fs14 u-fw300 u-lineHeight1_5 u-tcGrayDarkest"><div class="summarized">The existing rocket propulsion mechanism derives energy from rocket fuels. The rocket fuel is burnt inside a chamber and gas produced due to combustion is expelled out through a nozzle, which produces the upward thrust for rockets or... <a class="more_link u-tcGrayDark u-linkUnstyled" data-container=".work_9937643" data-show=".complete" data-hide=".summarized" data-more-link-behavior="true" href="#">more</a></div><div class="complete hidden">The existing rocket propulsion mechanism derives energy from rocket fuels. The rocket fuel is burnt inside a chamber and gas produced due to combustion is expelled out through a nozzle, which produces the upward thrust for rockets or spacecrafts.<br />The currently available rocket fuels are in solid liquid and as from Hydrogen peroxide is one of the commonly used rocket fuels. Cold gas is another gaseous propellant. The disadvantage of these rocket fuels is that it produces low thrust.Kerosene is a liquid propellant. The liquid fuel requires cryogenic systems for their implementation. The combustion of these fuels produces toxic gases, which are expelled to the space to obtain the required thrust. Thus it creates pollution in the outer space. The system that use solid fuels are unregulated. They produce lower thrust also.<br />Nuclear energy can be used as a propellant. But it produces radiations, which are very harmful. These radiations can penetrate the atmosphere and affect the human kind and other living things. The effect of nuclear radiations lasts for years that can jeopardize life on earth. So the use of nuclear propulsion technique is very risky. An Electrodynamic tether with its unique features put forward a better option for propulsion of rockets and spacecrafts.</div></div></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue Button--sm js-bookmark-button" data-academia-share="Work/9937643" data-share-source="work_strip" data-spinner="small_white_hide_contents"><i class="fa fa-plus"></i><span class="work-strip-link-text u-ml1x" data-content="button_text">Bookmark</span></a></div></li><li class="InlineList-item"><div class="download"><a id="60683ef8eb01312c043a9a6a65dfdcb5" rel="nofollow" data-download="{&quot;attachment_id&quot;:36088697,&quot;asset_id&quot;:9937643,&quot;asset_type&quot;:&quot;Work&quot;,&quot;always_allow_download&quot;:false,&quot;track&quot;:null,&quot;button_location&quot;:&quot;work_strip&quot;,&quot;source&quot;:null,&quot;hide_modal&quot;:null}" class="Button Button--sm Button--inverseGreen js-download-button prompt_button doc_download" href="https://www.academia.edu/attachments/36088697/download_file?st=MTczMjQ2OTkxNiw4LjIyMi4yMDguMTQ2&s=work_strip"><i class="fa fa-arrow-circle-o-down fa-lg"></i><span class="u-textUppercase u-ml1x" data-content="button_text">Download</span></a></div></li><li class="InlineList-item"><ul class="InlineList InlineList--bordered u-ph0x"><li class="InlineList-item InlineList-item--bordered"><span class="InlineList-item-text">by&nbsp;<span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a class="u-tcGrayDark u-fw700" data-has-card-for-user="17970773" href="https://gpcet.academia.edu/SaiCharan">Sai Charan Bharadwaj</a><script data-card-contents-for-user="17970773" type="text/json">{"id":17970773,"first_name":"Sai Charan","last_name":"Bharadwaj","domain_name":"gpcet","page_name":"SaiCharan","display_name":"Sai Charan Bharadwaj","profile_url":"https://gpcet.academia.edu/SaiCharan?f_ri=7715","photo":"https://0.academia-photos.com/17970773/5010130/5751325/s65_sai.charan.jpg"}</script></span></span></li><li class="js-paper-rank-work_9937643 InlineList-item InlineList-item--bordered hidden"><span class="js-paper-rank-view hidden u-tcGrayDark" data-paper-rank-work-id="9937643"><i class="u-m1x fa fa-bar-chart"></i><strong class="js-paper-rank"></strong></span><script>$(function() { new Works.PaperRankView({ workId: 9937643, container: ".js-paper-rank-work_9937643", }); 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$(".js-view-count[data-work-id=9937643]").text(description); $(".js-view-count-work_9937643").attr('title', description).tooltip(); }); });</script></span><script>$(function() { $(".js-view-count-work_9937643").removeClass('hidden') })</script></div></li><li class="InlineList-item u-positionRelative" style="max-width: 250px"><div class="u-positionAbsolute" data-has-card-for-ri-list="9937643"><i class="fa fa-tag InlineList-item-icon u-positionRelative"></i>&nbsp;&nbsp;<a class="InlineList-item-text u-positionRelative">8</a>&nbsp;&nbsp;</div><span class="InlineList-item-text u-textTruncate u-pl9x"><a class="InlineList-item-text" data-has-card-for-ri="49" href="https://www.academia.edu/Documents/in/Electrical_Engineering">Electrical Engineering</a>,&nbsp;<script data-card-contents-for-ri="49" type="text/json">{"id":49,"name":"Electrical Engineering","url":"https://www.academia.edu/Documents/in/Electrical_Engineering?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="507" href="https://www.academia.edu/Documents/in/Electromagnetism">Electromagnetism</a>,&nbsp;<script data-card-contents-for-ri="507" type="text/json">{"id":507,"name":"Electromagnetism","url":"https://www.academia.edu/Documents/in/Electromagnetism?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="700" href="https://www.academia.edu/Documents/in/Space_Sciences">Space Sciences</a>,&nbsp;<script data-card-contents-for-ri="700" type="text/json">{"id":700,"name":"Space Sciences","url":"https://www.academia.edu/Documents/in/Space_Sciences?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="7715" href="https://www.academia.edu/Documents/in/Magnetic_Materials">Magnetic Materials</a><script data-card-contents-for-ri="7715" type="text/json">{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false}</script></span></li><script>(function(){ if (true) { new Aedu.ResearchInterestListCard({ el: $('*[data-has-card-for-ri-list=9937643]'), work: {"id":9937643,"title":"Electro Dynamic Tethers","created_at":"2014-12-29T02:52:08.362-08:00","url":"https://www.academia.edu/9937643/Electro_Dynamic_Tethers?f_ri=7715","dom_id":"work_9937643","summary":"The existing rocket propulsion mechanism derives energy from rocket fuels. The rocket fuel is burnt inside a chamber and gas produced due to combustion is expelled out through a nozzle, which produces the upward thrust for rockets or spacecrafts.\nThe currently available rocket fuels are in solid liquid and as from Hydrogen peroxide is one of the commonly used rocket fuels. Cold gas is another gaseous propellant. The disadvantage of these rocket fuels is that it produces low thrust.Kerosene is a liquid propellant. The liquid fuel requires cryogenic systems for their implementation. The combustion of these fuels produces toxic gases, which are expelled to the space to obtain the required thrust. Thus it creates pollution in the outer space. The system that use solid fuels are unregulated. They produce lower thrust also.\nNuclear energy can be used as a propellant. But it produces radiations, which are very harmful. These radiations can penetrate the atmosphere and affect the human kind and other living things. The effect of nuclear radiations lasts for years that can jeopardize life on earth. So the use of nuclear propulsion technique is very risky. An Electrodynamic tether with its unique features put forward a better option for propulsion of rockets and spacecrafts.\n","downloadable_attachments":[{"id":36088697,"asset_id":9937643,"asset_type":"Work","always_allow_download":false}],"ordered_authors":[{"id":17970773,"first_name":"Sai Charan","last_name":"Bharadwaj","domain_name":"gpcet","page_name":"SaiCharan","display_name":"Sai Charan Bharadwaj","profile_url":"https://gpcet.academia.edu/SaiCharan?f_ri=7715","photo":"https://0.academia-photos.com/17970773/5010130/5751325/s65_sai.charan.jpg"}],"research_interests":[{"id":49,"name":"Electrical Engineering","url":"https://www.academia.edu/Documents/in/Electrical_Engineering?f_ri=7715","nofollow":false},{"id":507,"name":"Electromagnetism","url":"https://www.academia.edu/Documents/in/Electromagnetism?f_ri=7715","nofollow":false},{"id":700,"name":"Space Sciences","url":"https://www.academia.edu/Documents/in/Space_Sciences?f_ri=7715","nofollow":false},{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false},{"id":8381,"name":"Electrostatics","url":"https://www.academia.edu/Documents/in/Electrostatics?f_ri=7715"},{"id":11569,"name":"Satellite Communications","url":"https://www.academia.edu/Documents/in/Satellite_Communications?f_ri=7715"},{"id":35230,"name":"Electromagnetic Fields and Microwave Techniques","url":"https://www.academia.edu/Documents/in/Electromagnetic_Fields_and_Microwave_Techniques?f_ri=7715"},{"id":74023,"name":"Magnetism","url":"https://www.academia.edu/Documents/in/Magnetism?f_ri=7715"}]}, }) } })();</script></ul></li></ul></div></div><div class="u-borderBottom1 u-borderColorGrayLighter"><div class="clearfix u-pv7x u-mb0x js-work-card work_8257102" data-work_id="8257102" itemscope="itemscope" itemtype="https://schema.org/ScholarlyArticle"><div class="header"><div class="title u-fontSerif u-fs22 u-lineHeight1_3"><a class="u-tcGrayDarkest js-work-link" href="https://www.academia.edu/8257102/Dynamic_mechanical_properties_of_highly_loaded_ferrite_filled_thermoplastic_elastomer">Dynamic mechanical properties of highly loaded ferrite‐filled thermoplastic elastomer </a></div></div><div class="u-pb4x u-mt3x"><div class="summary u-fs14 u-fw300 u-lineHeight1_5 u-tcGrayDarkest"><div class="summarized">The dynamic mechanical properties in terms of the storage modulus E′, loss modulus E″, and the loss tangent δ has been studied for highly filled magnetic polymer composites. The effect of surface treatment on the relaxation spectra has... <a class="more_link u-tcGrayDark u-linkUnstyled" data-container=".work_8257102" data-show=".complete" data-hide=".summarized" data-more-link-behavior="true" href="#">more</a></div><div class="complete hidden">The dynamic mechanical properties in terms of the storage modulus E′, loss modulus E″, and the loss tangent δ has been studied for highly filled magnetic polymer composites. The effect of surface treatment on the relaxation spectra has been clearly elucidated and quantitative values indicating the extent of polymer–filler interactions have been given. Various models have been tested for describing the viscoelastic behavior of such highly filled systems. The Wiechert model using a single-arm with a Cole–Cole parameter has been shown to effectively fit the Argand diagram in the case of the present highly filled systems</div></div></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue Button--sm js-bookmark-button" data-academia-share="Work/8257102" data-share-source="work_strip" data-spinner="small_white_hide_contents"><i class="fa fa-plus"></i><span class="work-strip-link-text u-ml1x" data-content="button_text">Bookmark</span></a></div></li><li class="InlineList-item"><div class="download"><a id="35f7cb959526ae4be6fd44dced90d653" rel="nofollow" data-download="{&quot;attachment_id&quot;:55195032,&quot;asset_id&quot;:8257102,&quot;asset_type&quot;:&quot;Work&quot;,&quot;always_allow_download&quot;:false,&quot;track&quot;:null,&quot;button_location&quot;:&quot;work_strip&quot;,&quot;source&quot;:null,&quot;hide_modal&quot;:null}" class="Button Button--sm Button--inverseGreen js-download-button prompt_button doc_download" href="https://www.academia.edu/attachments/55195032/download_file?st=MTczMjQ2OTkxNiw4LjIyMi4yMDguMTQ2&s=work_strip"><i class="fa fa-arrow-circle-o-down fa-lg"></i><span class="u-textUppercase u-ml1x" data-content="button_text">Download</span></a></div></li><li class="InlineList-item"><ul class="InlineList InlineList--bordered u-ph0x"><li class="InlineList-item InlineList-item--bordered"><span class="InlineList-item-text">by&nbsp;<span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a class="u-tcGrayDark u-fw700" data-has-card-for-user="16213252" href="https://independent.academia.edu/DrAroonShenoy">Dr Aroon Shenoy</a><script data-card-contents-for-user="16213252" type="text/json">{"id":16213252,"first_name":"Dr Aroon","last_name":"Shenoy","domain_name":"independent","page_name":"DrAroonShenoy","display_name":"Dr Aroon Shenoy","profile_url":"https://independent.academia.edu/DrAroonShenoy?f_ri=7715","photo":"https://0.academia-photos.com/16213252/5032751/5855800/s65_dr_aroon.shenoy.jpg"}</script></span></span></li><li class="js-paper-rank-work_8257102 InlineList-item InlineList-item--bordered hidden"><span class="js-paper-rank-view hidden u-tcGrayDark" data-paper-rank-work-id="8257102"><i class="u-m1x fa fa-bar-chart"></i><strong class="js-paper-rank"></strong></span><script>$(function() { new Works.PaperRankView({ workId: 8257102, container: ".js-paper-rank-work_8257102", }); 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$(".js-view-count[data-work-id=8257102]").text(description); $(".js-view-count-work_8257102").attr('title', description).tooltip(); }); });</script></span><script>$(function() { $(".js-view-count-work_8257102").removeClass('hidden') })</script></div></li><li class="InlineList-item u-positionRelative" style="max-width: 250px"><div class="u-positionAbsolute" data-has-card-for-ri-list="8257102"><i class="fa fa-tag InlineList-item-icon u-positionRelative"></i>&nbsp;&nbsp;<a class="InlineList-item-text u-positionRelative">11</a>&nbsp;&nbsp;</div><span class="InlineList-item-text u-textTruncate u-pl10x"><a class="InlineList-item-text" data-has-card-for-ri="59" href="https://www.academia.edu/Documents/in/Polymer_Engineering">Polymer Engineering</a>,&nbsp;<script data-card-contents-for-ri="59" type="text/json">{"id":59,"name":"Polymer Engineering","url":"https://www.academia.edu/Documents/in/Polymer_Engineering?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="7598" href="https://www.academia.edu/Documents/in/Rheology">Rheology</a>,&nbsp;<script data-card-contents-for-ri="7598" type="text/json">{"id":7598,"name":"Rheology","url":"https://www.academia.edu/Documents/in/Rheology?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="7715" href="https://www.academia.edu/Documents/in/Magnetic_Materials">Magnetic Materials</a>,&nbsp;<script data-card-contents-for-ri="7715" type="text/json">{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="51305" href="https://www.academia.edu/Documents/in/Polymer_Engineering_and_Rheology">Polymer Engineering &amp; Rheology</a><script data-card-contents-for-ri="51305" type="text/json">{"id":51305,"name":"Polymer Engineering \u0026 Rheology","url":"https://www.academia.edu/Documents/in/Polymer_Engineering_and_Rheology?f_ri=7715","nofollow":false}</script></span></li><script>(function(){ if (true) { new Aedu.ResearchInterestListCard({ el: $('*[data-has-card-for-ri-list=8257102]'), work: {"id":8257102,"title":"Dynamic mechanical properties of highly loaded ferrite‐filled thermoplastic elastomer ","created_at":"2014-09-09T04:50:57.993-07:00","url":"https://www.academia.edu/8257102/Dynamic_mechanical_properties_of_highly_loaded_ferrite_filled_thermoplastic_elastomer?f_ri=7715","dom_id":"work_8257102","summary":"The dynamic mechanical properties in terms of the storage modulus E′, loss modulus E″, and the loss tangent δ has been studied for highly filled magnetic polymer composites. The effect of surface treatment on the relaxation spectra has been clearly elucidated and quantitative values indicating the extent of polymer–filler interactions have been given. Various models have been tested for describing the viscoelastic behavior of such highly filled systems. The Wiechert model using a single-arm with a Cole–Cole parameter has been shown to effectively fit the Argand diagram in the case of the present highly filled systems","downloadable_attachments":[{"id":55195032,"asset_id":8257102,"asset_type":"Work","always_allow_download":false}],"ordered_authors":[{"id":16213252,"first_name":"Dr Aroon","last_name":"Shenoy","domain_name":"independent","page_name":"DrAroonShenoy","display_name":"Dr Aroon Shenoy","profile_url":"https://independent.academia.edu/DrAroonShenoy?f_ri=7715","photo":"https://0.academia-photos.com/16213252/5032751/5855800/s65_dr_aroon.shenoy.jpg"}],"research_interests":[{"id":59,"name":"Polymer Engineering","url":"https://www.academia.edu/Documents/in/Polymer_Engineering?f_ri=7715","nofollow":false},{"id":7598,"name":"Rheology","url":"https://www.academia.edu/Documents/in/Rheology?f_ri=7715","nofollow":false},{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false},{"id":51305,"name":"Polymer Engineering \u0026 Rheology","url":"https://www.academia.edu/Documents/in/Polymer_Engineering_and_Rheology?f_ri=7715","nofollow":false},{"id":83780,"name":"Dynamic Mechanical Behaviour","url":"https://www.academia.edu/Documents/in/Dynamic_Mechanical_Behaviour?f_ri=7715"},{"id":91045,"name":"Polymer Composites","url":"https://www.academia.edu/Documents/in/Polymer_Composites?f_ri=7715"},{"id":95502,"name":"Non-Newtonian Rheology","url":"https://www.academia.edu/Documents/in/Non-Newtonian_Rheology?f_ri=7715"},{"id":205991,"name":"Thermoplastic Elastomer","url":"https://www.academia.edu/Documents/in/Thermoplastic_Elastomer?f_ri=7715"},{"id":253171,"name":"polymer science and Engineering","url":"https://www.academia.edu/Documents/in/polymer_science_and_Engineering?f_ri=7715"},{"id":347632,"name":"Polymer Melt Rheology","url":"https://www.academia.edu/Documents/in/Polymer_Melt_Rheology?f_ri=7715"},{"id":963763,"name":"Rheological Studies","url":"https://www.academia.edu/Documents/in/Rheological_Studies?f_ri=7715"}]}, }) } })();</script></ul></li></ul></div></div><div class="u-borderBottom1 u-borderColorGrayLighter"><div class="clearfix u-pv7x u-mb0x js-work-card work_14253679 coauthored" data-work_id="14253679" itemscope="itemscope" itemtype="https://schema.org/ScholarlyArticle"><div class="header"><div class="title u-fontSerif u-fs22 u-lineHeight1_3"><a class="u-tcGrayDarkest js-work-link" href="https://www.academia.edu/14253679/Elevated_Curie_temperature_and_half_metallicity_in_the_ferromagnetic_semiconductor_La_x_Eu_1_x_O">Elevated Curie temperature and half-metallicity in the ferromagnetic semiconductor La_{x}Eu_{1−x}O</a></div></div><div class="u-pb4x u-mt3x"><div class="summary u-fs14 u-fw300 u-lineHeight1_5 u-tcGrayDarkest"><div class="summarized">Here we study the effect of La doping in EuO thin films using SQUID magnetometry, muon spin rotation ($\mu$SR), polarized neutron reflectivity (PNR), and density functional theory (DFT). The $\mu$SR data shows that the... <a class="more_link u-tcGrayDark u-linkUnstyled" data-container=".work_14253679" data-show=".complete" data-hide=".summarized" data-more-link-behavior="true" href="#">more</a></div><div class="complete hidden">Here we study the effect of La doping in EuO thin films using SQUID magnetometry, muon spin rotation ($\mu$SR), polarized neutron reflectivity (PNR), and density functional theory (DFT). The $\mu$SR data shows that the La$_{0.15}$Eu$_{0.85}$O is homogeneously magnetically ordered up to its elevated $T_{\rm C}$. It is concluded that bound magnetic polaron behavior does not explain the increase in $T_{\rm C}$ and an RKKY-like interaction is consistent with the $\mu$SR data. The estimation of the magnetic moment by DFT simulations concurs with the results obtained by PNR, showing a reduction of the magnetic moment per La$_{x}$Eu$_{1-x}$O for increasing lanthanum doping. This reduction of the magnetic moment is explained by the reduction of the number of Eu-4$f$ electrons present in all the magnetic interactions in EuO films. Finally, we show that an upwards shift of the Fermi energy with La or Gd doping gives rise to half-metallicity for doping levels as high as 3.2 %.</div></div></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue Button--sm js-bookmark-button" data-academia-share="Work/14253679" data-share-source="work_strip" data-spinner="small_white_hide_contents"><i class="fa fa-plus"></i><span class="work-strip-link-text u-ml1x" data-content="button_text">Bookmark</span></a></div></li><li class="InlineList-item"><div class="download"><a id="af52f730a2b53c4521b7db9c93d053ab" rel="nofollow" data-download="{&quot;attachment_id&quot;:38246827,&quot;asset_id&quot;:14253679,&quot;asset_type&quot;:&quot;Work&quot;,&quot;always_allow_download&quot;:false,&quot;track&quot;:null,&quot;button_location&quot;:&quot;work_strip&quot;,&quot;source&quot;:null,&quot;hide_modal&quot;:null}" class="Button Button--sm Button--inverseGreen js-download-button prompt_button doc_download" href="https://www.academia.edu/attachments/38246827/download_file?st=MTczMjQ2OTkxNiw4LjIyMi4yMDguMTQ2&s=work_strip"><i class="fa fa-arrow-circle-o-down fa-lg"></i><span class="u-textUppercase u-ml1x" data-content="button_text">Download</span></a></div></li><li class="InlineList-item"><ul class="InlineList InlineList--bordered u-ph0x"><li class="InlineList-item InlineList-item--bordered"><span class="InlineList-item-text">by&nbsp;<span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a class="u-tcGrayDark u-fw700" data-has-card-for-user="856870" href="https://warwick.academia.edu/NicholasHine">Nicholas Hine</a><script data-card-contents-for-user="856870" type="text/json">{"id":856870,"first_name":"Nicholas","last_name":"Hine","domain_name":"warwick","page_name":"NicholasHine","display_name":"Nicholas Hine","profile_url":"https://warwick.academia.edu/NicholasHine?f_ri=7715","photo":"https://0.academia-photos.com/856870/305504/11723733/s65_nicholas.hine.png"}</script></span></span><span class="u-displayInlineBlock InlineList-item-text">&nbsp;and&nbsp;<span class="u-textDecorationUnderline u-clickable InlineList-item-text js-work-more-authors-14253679">+1</span><div class="hidden js-additional-users-14253679"><div><span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a href="https://cambridge.academia.edu/PedroMonteiro">Pedro Monteiro</a></span></div></div></span><script>(function(){ var popoverSettings = { el: $('.js-work-more-authors-14253679'), placement: 'bottom', hide_delay: 200, html: true, content: function(){ return $('.js-additional-users-14253679').html(); } } new HoverPopover(popoverSettings); })();</script></li><li class="js-paper-rank-work_14253679 InlineList-item InlineList-item--bordered hidden"><span class="js-paper-rank-view hidden u-tcGrayDark" data-paper-rank-work-id="14253679"><i class="u-m1x fa fa-bar-chart"></i><strong class="js-paper-rank"></strong></span><script>$(function() { new Works.PaperRankView({ workId: 14253679, container: ".js-paper-rank-work_14253679", }); });</script></li><li class="js-percentile-work_14253679 InlineList-item InlineList-item--bordered hidden u-tcGrayDark"><span class="percentile-widget hidden"><span class="u-mr2x percentile-widget" style="display: none">•</span><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 14253679; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-percentile-work_14253679"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></li><li class="js-view-count-work_14253679 InlineList-item InlineList-item--bordered hidden"><div><span><span class="js-view-count view-count u-mr2x" data-work-id="14253679"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 14253679; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=14253679]").text(description); $(".js-view-count-work_14253679").attr('title', description).tooltip(); }); });</script></span><script>$(function() { $(".js-view-count-work_14253679").removeClass('hidden') })</script></div></li><li class="InlineList-item u-positionRelative" style="max-width: 250px"><div class="u-positionAbsolute" data-has-card-for-ri-list="14253679"><i class="fa fa-tag InlineList-item-icon u-positionRelative"></i>&nbsp;&nbsp;<a class="InlineList-item-text u-positionRelative">5</a>&nbsp;&nbsp;</div><span class="InlineList-item-text u-textTruncate u-pl9x"><a class="InlineList-item-text" data-has-card-for-ri="498" href="https://www.academia.edu/Documents/in/Physics">Physics</a>,&nbsp;<script data-card-contents-for-ri="498" type="text/json">{"id":498,"name":"Physics","url":"https://www.academia.edu/Documents/in/Physics?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="505" href="https://www.academia.edu/Documents/in/Condensed_Matter_Physics">Condensed Matter Physics</a>,&nbsp;<script data-card-contents-for-ri="505" type="text/json">{"id":505,"name":"Condensed Matter Physics","url":"https://www.academia.edu/Documents/in/Condensed_Matter_Physics?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="4091" href="https://www.academia.edu/Documents/in/Semiconductor_Physics">Semiconductor Physics</a>,&nbsp;<script data-card-contents-for-ri="4091" type="text/json">{"id":4091,"name":"Semiconductor Physics","url":"https://www.academia.edu/Documents/in/Semiconductor_Physics?f_ri=7715","nofollow":false}</script><a class="InlineList-item-text" data-has-card-for-ri="7715" href="https://www.academia.edu/Documents/in/Magnetic_Materials">Magnetic Materials</a><script data-card-contents-for-ri="7715" type="text/json">{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false}</script></span></li><script>(function(){ if (true) { new Aedu.ResearchInterestListCard({ el: $('*[data-has-card-for-ri-list=14253679]'), work: {"id":14253679,"title":"Elevated Curie temperature and half-metallicity in the ferromagnetic semiconductor La_{x}Eu_{1−x}O","created_at":"2015-07-21T03:17:05.871-07:00","url":"https://www.academia.edu/14253679/Elevated_Curie_temperature_and_half_metallicity_in_the_ferromagnetic_semiconductor_La_x_Eu_1_x_O?f_ri=7715","dom_id":"work_14253679","summary":"Here we study the effect of La doping in EuO thin films using SQUID magnetometry, muon spin rotation ($\\mu$SR), polarized neutron reflectivity (PNR), and density functional theory (DFT). The $\\mu$SR data shows that the La$_{0.15}$Eu$_{0.85}$O is homogeneously magnetically ordered up to its elevated $T_{\\rm C}$. It is concluded that bound magnetic polaron behavior does not explain the increase in $T_{\\rm C}$ and an RKKY-like interaction is consistent with the $\\mu$SR data. The estimation of the magnetic moment by DFT simulations concurs with the results obtained by PNR, showing a reduction of the magnetic moment per La$_{x}$Eu$_{1-x}$O for increasing lanthanum doping. This reduction of the magnetic moment is explained by the reduction of the number of Eu-4$f$ electrons present in all the magnetic interactions in EuO films. Finally, we show that an upwards shift of the Fermi energy with La or Gd doping gives rise to half-metallicity for doping levels as high as 3.2 %.","downloadable_attachments":[{"id":38246827,"asset_id":14253679,"asset_type":"Work","always_allow_download":false}],"ordered_authors":[{"id":856870,"first_name":"Nicholas","last_name":"Hine","domain_name":"warwick","page_name":"NicholasHine","display_name":"Nicholas Hine","profile_url":"https://warwick.academia.edu/NicholasHine?f_ri=7715","photo":"https://0.academia-photos.com/856870/305504/11723733/s65_nicholas.hine.png"},{"id":555471,"first_name":"Pedro","last_name":"Monteiro","domain_name":"cambridge","page_name":"PedroMonteiro","display_name":"Pedro Monteiro","profile_url":"https://cambridge.academia.edu/PedroMonteiro?f_ri=7715","photo":"https://0.academia-photos.com/555471/276819/5221175/s65_pedro.monteiro.jpg"}],"research_interests":[{"id":498,"name":"Physics","url":"https://www.academia.edu/Documents/in/Physics?f_ri=7715","nofollow":false},{"id":505,"name":"Condensed Matter Physics","url":"https://www.academia.edu/Documents/in/Condensed_Matter_Physics?f_ri=7715","nofollow":false},{"id":4091,"name":"Semiconductor Physics","url":"https://www.academia.edu/Documents/in/Semiconductor_Physics?f_ri=7715","nofollow":false},{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false},{"id":32745,"name":"Strongly-correlated electron systems","url":"https://www.academia.edu/Documents/in/Strongly-correlated_electron_systems?f_ri=7715"}]}, }) } })();</script></ul></li></ul></div></div><div class="u-borderBottom1 u-borderColorGrayLighter"><div class="clearfix u-pv7x u-mb0x js-work-card work_71465288" data-work_id="71465288" itemscope="itemscope" itemtype="https://schema.org/ScholarlyArticle"><div class="header"><div class="title u-fontSerif u-fs22 u-lineHeight1_3"><a class="u-tcGrayDarkest js-work-link" href="https://www.academia.edu/71465288/FRICTION_STIR_WELDING_of_MAGNESIUM_ALLOYS_A_REVIEW">FRICTION STIR WELDING of MAGNESIUM ALLOYS - A REVIEW</a></div></div><div class="u-pb4x u-mt3x"><div class="summary u-fs14 u-fw300 u-lineHeight1_5 u-tcGrayDarkest"><div class="summarized">The selection of proper material for each application is a critical part in every manufacturing industry. In the field of aerospace and automobile the major requirement is light weight yet strong material which can possess every aspect of... <a class="more_link u-tcGrayDark u-linkUnstyled" data-container=".work_71465288" data-show=".complete" data-hide=".summarized" data-more-link-behavior="true" href="#">more</a></div><div class="complete hidden">The selection of proper material for each application is a critical part in every manufacturing industry. In the field of aerospace and automobile the major requirement is light weight yet strong material which can possess every aspect of design parameters. Magnesium alloy one of the major raw material used in these industries due to its light weight, good thermal conductivity etc. Also Friction stir welding is the joining process that is being used in these industries as it is a solid state joining process. This paper gives a detailed review about Friction Stir welding of Mg alloys. The review period is considered from 2009 to 2015.A detailed review about Friction stir welding of Mg alloys has not been done before in this manner. This review work may be a ready reference for subsequent researchers.</div></div></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue Button--sm js-bookmark-button" data-academia-share="Work/71465288" data-share-source="work_strip" data-spinner="small_white_hide_contents"><i class="fa fa-plus"></i><span class="work-strip-link-text u-ml1x" data-content="button_text">Bookmark</span></a></div></li><li class="InlineList-item"><div class="download"><a id="5831bcdcf42ae267e1ec7fc93ce07c3b" rel="nofollow" data-download="{&quot;attachment_id&quot;:80795338,&quot;asset_id&quot;:71465288,&quot;asset_type&quot;:&quot;Work&quot;,&quot;always_allow_download&quot;:false,&quot;track&quot;:null,&quot;button_location&quot;:&quot;work_strip&quot;,&quot;source&quot;:null,&quot;hide_modal&quot;:null}" class="Button Button--sm Button--inverseGreen js-download-button prompt_button doc_download" href="https://www.academia.edu/attachments/80795338/download_file?st=MTczMjQ2OTkxNiw4LjIyMi4yMDguMTQ2&s=work_strip"><i class="fa fa-arrow-circle-o-down fa-lg"></i><span class="u-textUppercase u-ml1x" data-content="button_text">Download</span></a></div></li><li class="InlineList-item"><ul class="InlineList InlineList--bordered u-ph0x"><li class="InlineList-item InlineList-item--bordered"><span class="InlineList-item-text">by&nbsp;<span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a class="u-tcGrayDark u-fw700" data-has-card-for-user="67071159" href="https://niuniv.academia.edu/EdwinRajaDhas">Edwin Raja Dhas</a><script data-card-contents-for-user="67071159" type="text/json">{"id":67071159,"first_name":"Edwin","last_name":"Raja Dhas","domain_name":"niuniv","page_name":"EdwinRajaDhas","display_name":"Edwin Raja Dhas","profile_url":"https://niuniv.academia.edu/EdwinRajaDhas?f_ri=7715","photo":"/images/s65_no_pic.png"}</script></span></span></li><li class="js-paper-rank-work_71465288 InlineList-item InlineList-item--bordered hidden"><span class="js-paper-rank-view hidden u-tcGrayDark" data-paper-rank-work-id="71465288"><i class="u-m1x fa fa-bar-chart"></i><strong class="js-paper-rank"></strong></span><script>$(function() { new Works.PaperRankView({ workId: 71465288, container: ".js-paper-rank-work_71465288", }); 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In the field of aerospace and automobile the major requirement is light weight yet strong material which can possess every aspect of design parameters. Magnesium alloy one of the major raw material used in these industries due to its light weight, good thermal conductivity etc. Also Friction stir welding is the joining process that is being used in these industries as it is a solid state joining process. This paper gives a detailed review about Friction Stir welding of Mg alloys. The review period is considered from 2009 to 2015.A detailed review about Friction stir welding of Mg alloys has not been done before in this manner. This review work may be a ready reference for subsequent researchers.","downloadable_attachments":[{"id":80795338,"asset_id":71465288,"asset_type":"Work","always_allow_download":false}],"ordered_authors":[{"id":67071159,"first_name":"Edwin","last_name":"Raja Dhas","domain_name":"niuniv","page_name":"EdwinRajaDhas","display_name":"Edwin Raja Dhas","profile_url":"https://niuniv.academia.edu/EdwinRajaDhas?f_ri=7715","photo":"/images/s65_no_pic.png"}],"research_interests":[{"id":60,"name":"Mechanical Engineering","url":"https://www.academia.edu/Documents/in/Mechanical_Engineering?f_ri=7715","nofollow":false},{"id":511,"name":"Materials Science","url":"https://www.academia.edu/Documents/in/Materials_Science?f_ri=7715","nofollow":false},{"id":5412,"name":"Energy","url":"https://www.academia.edu/Documents/in/Energy?f_ri=7715","nofollow":false},{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false},{"id":11073,"name":"Self Assembly","url":"https://www.academia.edu/Documents/in/Self_Assembly?f_ri=7715"},{"id":11678,"name":"Nanocomposites","url":"https://www.academia.edu/Documents/in/Nanocomposites?f_ri=7715"},{"id":11973,"name":"Nanomaterials","url":"https://www.academia.edu/Documents/in/Nanomaterials?f_ri=7715"},{"id":21466,"name":"Polymers","url":"https://www.academia.edu/Documents/in/Polymers?f_ri=7715"},{"id":27305,"name":"Computational Mathematics","url":"https://www.academia.edu/Documents/in/Computational_Mathematics?f_ri=7715"},{"id":61096,"name":"Mechanical properties","url":"https://www.academia.edu/Documents/in/Mechanical_properties?f_ri=7715"},{"id":63431,"name":"Solar Energy","url":"https://www.academia.edu/Documents/in/Solar_Energy?f_ri=7715"},{"id":111151,"name":"Friction Stir Welding","url":"https://www.academia.edu/Documents/in/Friction_Stir_Welding?f_ri=7715"},{"id":126329,"name":"Magnesium Alloys","url":"https://www.academia.edu/Documents/in/Magnesium_Alloys?f_ri=7715"},{"id":1009928,"name":"Welding of Metals and Alloys","url":"https://www.academia.edu/Documents/in/Welding_of_Metals_and_Alloys?f_ri=7715"},{"id":1831891,"name":"Theory and Modelling of Magnetic Materials","url":"https://www.academia.edu/Documents/in/Theory_and_Modelling_of_Magnetic_Materials?f_ri=7715"},{"id":3041964,"name":"Diffraction studies","url":"https://www.academia.edu/Documents/in/Diffraction_studies?f_ri=7715"},{"id":3056363,"name":"Fracture of materials","url":"https://www.academia.edu/Documents/in/Fracture_of_materials?f_ri=7715"},{"id":3775584,"name":"anoparticulates","url":"https://www.academia.edu/Documents/in/anoparticulates?f_ri=7715"}]}, }) } })();</script></ul></li></ul></div></div><div class="u-borderBottom1 u-borderColorGrayLighter"><div class="clearfix u-pv7x u-mb0x js-work-card work_55712569" data-work_id="55712569" itemscope="itemscope" itemtype="https://schema.org/ScholarlyArticle"><div class="header"><div class="title u-fontSerif u-fs22 u-lineHeight1_3"><a class="u-tcGrayDarkest js-work-link" href="https://www.academia.edu/55712569/Growth_Characterization_and_Properties_of_Ultrathin_Magnetic_Films_and_Multilayers_Materials_Research_Society_Symposium_Proceedings_Volume_151">Growth, Characterization and Properties of Ultrathin Magnetic Films and Multilayers. Materials Research Society Symposium Proceedings. Volume 151</a></div></div><div class="u-pb4x u-mt3x"></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue Button--sm js-bookmark-button" data-academia-share="Work/55712569" data-share-source="work_strip" data-spinner="small_white_hide_contents"><i class="fa fa-plus"></i><span class="work-strip-link-text u-ml1x" data-content="button_text">Bookmark</span></a></div></li><li class="InlineList-item"><div class="download"><a id="35c294d713181c69fd33f550bb290617" rel="nofollow" data-download="{&quot;attachment_id&quot;:71455208,&quot;asset_id&quot;:55712569,&quot;asset_type&quot;:&quot;Work&quot;,&quot;always_allow_download&quot;:false,&quot;track&quot;:null,&quot;button_location&quot;:&quot;work_strip&quot;,&quot;source&quot;:null,&quot;hide_modal&quot;:null}" class="Button Button--sm Button--inverseGreen js-download-button prompt_button doc_download" href="https://www.academia.edu/attachments/71455208/download_file?st=MTczMjQ2OTkxNiw4LjIyMi4yMDguMTQ2&s=work_strip"><i class="fa fa-arrow-circle-o-down fa-lg"></i><span class="u-textUppercase u-ml1x" data-content="button_text">Download</span></a></div></li><li class="InlineList-item"><ul class="InlineList InlineList--bordered u-ph0x"><li class="InlineList-item InlineList-item--bordered"><span class="InlineList-item-text">by&nbsp;<span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a class="u-tcGrayDark u-fw700" data-has-card-for-user="55711412" href="https://osu1.academia.edu/JosephHeremans">Joseph Heremans</a><script data-card-contents-for-user="55711412" type="text/json">{"id":55711412,"first_name":"Joseph","last_name":"Heremans","domain_name":"osu1","page_name":"JosephHeremans","display_name":"Joseph Heremans","profile_url":"https://osu1.academia.edu/JosephHeremans?f_ri=7715","photo":"/images/s65_no_pic.png"}</script></span></span></li><li class="js-paper-rank-work_55712569 InlineList-item InlineList-item--bordered hidden"><span class="js-paper-rank-view hidden u-tcGrayDark" data-paper-rank-work-id="55712569"><i class="u-m1x fa fa-bar-chart"></i><strong class="js-paper-rank"></strong></span><script>$(function() { new Works.PaperRankView({ workId: 55712569, container: ".js-paper-rank-work_55712569", }); 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Materials Research Society Symposium Proceedings. Volume 151","created_at":"2021-10-05T13:05:55.103-07:00","url":"https://www.academia.edu/55712569/Growth_Characterization_and_Properties_of_Ultrathin_Magnetic_Films_and_Multilayers_Materials_Research_Society_Symposium_Proceedings_Volume_151?f_ri=7715","dom_id":"work_55712569","summary":null,"downloadable_attachments":[{"id":71455208,"asset_id":55712569,"asset_type":"Work","always_allow_download":false}],"ordered_authors":[{"id":55711412,"first_name":"Joseph","last_name":"Heremans","domain_name":"osu1","page_name":"JosephHeremans","display_name":"Joseph Heremans","profile_url":"https://osu1.academia.edu/JosephHeremans?f_ri=7715","photo":"/images/s65_no_pic.png"}],"research_interests":[{"id":2161,"name":"Microstructure","url":"https://www.academia.edu/Documents/in/Microstructure?f_ri=7715","nofollow":false},{"id":4120,"name":"Crystal Growth","url":"https://www.academia.edu/Documents/in/Crystal_Growth?f_ri=7715","nofollow":false},{"id":7523,"name":"Control","url":"https://www.academia.edu/Documents/in/Control?f_ri=7715","nofollow":false},{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false},{"id":34754,"name":"Magnetic field","url":"https://www.academia.edu/Documents/in/Magnetic_field?f_ri=7715"},{"id":50630,"name":"Crystal structure","url":"https://www.academia.edu/Documents/in/Crystal_structure?f_ri=7715"},{"id":65140,"name":"Models","url":"https://www.academia.edu/Documents/in/Models?f_ri=7715"},{"id":75647,"name":"Interactions","url":"https://www.academia.edu/Documents/in/Interactions?f_ri=7715"},{"id":80698,"name":"Films","url":"https://www.academia.edu/Documents/in/Films?f_ri=7715"},{"id":133975,"name":"Magnetic Properties","url":"https://www.academia.edu/Documents/in/Magnetic_Properties?f_ri=7715"},{"id":136801,"name":"Fabrication","url":"https://www.academia.edu/Documents/in/Fabrication?f_ri=7715"},{"id":161318,"name":"Mathematical Models","url":"https://www.academia.edu/Documents/in/Mathematical_Models?f_ri=7715"},{"id":168891,"name":"Chemical Analysis","url":"https://www.academia.edu/Documents/in/Chemical_Analysis?f_ri=7715"},{"id":176632,"name":"Interfaces","url":"https://www.academia.edu/Documents/in/Interfaces?f_ri=7715"},{"id":219635,"name":"Electronic Structure","url":"https://www.academia.edu/Documents/in/Electronic_Structure?f_ri=7715"},{"id":291387,"name":"Mathematical Model","url":"https://www.academia.edu/Documents/in/Mathematical_Model?f_ri=7715"},{"id":473797,"name":"Microstructures","url":"https://www.academia.edu/Documents/in/Microstructures?f_ri=7715"},{"id":1135792,"name":"Layers","url":"https://www.academia.edu/Documents/in/Layers?f_ri=7715"},{"id":1228946,"name":"Physical Properties","url":"https://www.academia.edu/Documents/in/Physical_Properties?f_ri=7715"},{"id":3077158,"name":"Dilution","url":"https://www.academia.edu/Documents/in/Dilution?f_ri=7715"}]}, }) } })();</script></ul></li></ul></div></div><div class="u-borderBottom1 u-borderColorGrayLighter"><div class="clearfix u-pv7x u-mb0x js-work-card work_3738876" data-work_id="3738876" itemscope="itemscope" itemtype="https://schema.org/ScholarlyArticle"><div class="header"><div class="title u-fontSerif u-fs22 u-lineHeight1_3"><a class="u-tcGrayDarkest js-work-link" href="https://www.academia.edu/3738876/Lattice_dynamics_and_structural_stability_of_ordered_Fe3Ni_Fe3Pd_and_Fe3Pt_alloys">Lattice dynamics and structural stability of ordered Fe3Ni, Fe3Pd and Fe3Pt alloys</a></div></div><div class="u-pb4x u-mt3x"><div class="summary u-fs14 u-fw300 u-lineHeight1_5 u-tcGrayDarkest"><div class="summarized">We investigate the binding surface along the Bain path and phonon dispersion relations for the cubic phase of the ferromagnetic binary alloys Fe3X (X = Ni, Pd, Pt) for L12 and DO22 ordered phases from first principles by means of density... <a class="more_link u-tcGrayDark u-linkUnstyled" data-container=".work_3738876" data-show=".complete" data-hide=".summarized" data-more-link-behavior="true" href="#">more</a></div><div class="complete hidden">We investigate the binding surface along the Bain path and phonon dispersion relations for the cubic phase of the ferromagnetic binary alloys Fe3X (X = Ni, Pd, Pt) for L12 and DO22 ordered phases from first principles by means of density functional theory. The phonon dispersion relations exhibit a softening of the transverse acoustic mode at the M-point in the L12-phase in accordance with experiments for ordered Fe3Pt. This instability can be associated with a rotational movement of the Fe-atoms around the Ni-group element in the neighboring layers and is accompanied by an extensive reconstruction of the Fermi surface. In addition, we find an incomplete softening in [111] direction which is strongest for Fe3 Ni. We conclude that besides the valence electron density also the specific Fe-content and the masses of the alloying partners should be considered as parameters for the design of Fe-based functional magnetic materials.</div></div></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue Button--sm js-bookmark-button" data-academia-share="Work/3738876" data-share-source="work_strip" data-spinner="small_white_hide_contents"><i class="fa fa-plus"></i><span class="work-strip-link-text u-ml1x" data-content="button_text">Bookmark</span></a></div></li><li class="InlineList-item"><div class="download"><a id="1522c30f6030ef77648104c0b15d6c75" rel="nofollow" data-download="{&quot;attachment_id&quot;:50152879,&quot;asset_id&quot;:3738876,&quot;asset_type&quot;:&quot;Work&quot;,&quot;always_allow_download&quot;:false,&quot;track&quot;:null,&quot;button_location&quot;:&quot;work_strip&quot;,&quot;source&quot;:null,&quot;hide_modal&quot;:null}" class="Button Button--sm Button--inverseGreen js-download-button prompt_button doc_download" href="https://www.academia.edu/attachments/50152879/download_file?st=MTczMjQ2OTkxNiw4LjIyMi4yMDguMTQ2&s=work_strip"><i class="fa fa-arrow-circle-o-down fa-lg"></i><span class="u-textUppercase u-ml1x" data-content="button_text">Download</span></a></div></li><li class="InlineList-item"><ul class="InlineList InlineList--bordered u-ph0x"><li class="InlineList-item InlineList-item--bordered"><span class="InlineList-item-text">by&nbsp;<span itemscope="itemscope" itemprop="author" itemtype="https://schema.org/Person"><a class="u-tcGrayDark u-fw700" data-has-card-for-user="3366852" href="https://halle.academia.edu/WaheedAdeagbo">Waheed Adeagbo</a><script data-card-contents-for-user="3366852" type="text/json">{"id":3366852,"first_name":"Waheed","last_name":"Adeagbo","domain_name":"halle","page_name":"WaheedAdeagbo","display_name":"Waheed Adeagbo","profile_url":"https://halle.academia.edu/WaheedAdeagbo?f_ri=7715","photo":"https://0.academia-photos.com/3366852/1131716/1418213/s65_waheed.adeagbo.jpg"}</script></span></span></li><li class="js-paper-rank-work_3738876 InlineList-item InlineList-item--bordered hidden"><span class="js-paper-rank-view hidden u-tcGrayDark" data-paper-rank-work-id="3738876"><i class="u-m1x fa fa-bar-chart"></i><strong class="js-paper-rank"></strong></span><script>$(function() { new Works.PaperRankView({ workId: 3738876, container: ".js-paper-rank-work_3738876", }); 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The phonon dispersion relations exhibit a softening of the transverse acoustic mode at the M-point in the L12-phase in accordance with experiments for ordered Fe3Pt. This instability can be associated with a rotational movement of the Fe-atoms around the Ni-group element in the neighboring layers and is accompanied by an extensive reconstruction of the Fermi surface. In addition, we find an incomplete softening in [111] direction which is strongest for Fe3 Ni. We conclude that besides the valence electron density also the specific Fe-content and the masses of the alloying partners should be considered as parameters for the design of Fe-based functional magnetic materials.","downloadable_attachments":[{"id":50152879,"asset_id":3738876,"asset_type":"Work","always_allow_download":false}],"ordered_authors":[{"id":3366852,"first_name":"Waheed","last_name":"Adeagbo","domain_name":"halle","page_name":"WaheedAdeagbo","display_name":"Waheed Adeagbo","profile_url":"https://halle.academia.edu/WaheedAdeagbo?f_ri=7715","photo":"https://0.academia-photos.com/3366852/1131716/1418213/s65_waheed.adeagbo.jpg"}],"research_interests":[{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false},{"id":33350,"name":"Structural Stability","url":"https://www.academia.edu/Documents/in/Structural_Stability?f_ri=7715","nofollow":false},{"id":118582,"name":"Physical 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$('*[data-has-card-for-ri-list=21204274]'), work: {"id":21204274,"title":"Formation and magnetic behaviour of manganese oxide nanoparticles","created_at":"2016-01-29T22:47:23.502-08:00","url":"https://www.academia.edu/21204274/Formation_and_magnetic_behaviour_of_manganese_oxide_nanoparticles?f_ri=7715","dom_id":"work_21204274","summary":null,"downloadable_attachments":[{"id":41761409,"asset_id":21204274,"asset_type":"Work","always_allow_download":false}],"ordered_authors":[{"id":42261937,"first_name":"Bhagwati","last_name":"Joshi","domain_name":"cambridge","page_name":"BhagwatiJoshi","display_name":"Bhagwati Joshi","profile_url":"https://cambridge.academia.edu/BhagwatiJoshi?f_ri=7715","photo":"/images/s65_no_pic.png"}],"research_interests":[{"id":48,"name":"Engineering","url":"https://www.academia.edu/Documents/in/Engineering?f_ri=7715","nofollow":false},{"id":7715,"name":"Magnetic Materials","url":"https://www.academia.edu/Documents/in/Magnetic_Materials?f_ri=7715","nofollow":false},{"id":85460,"name":"Sol Gel Process","url":"https://www.academia.edu/Documents/in/Sol_Gel_Process?f_ri=7715","nofollow":false},{"id":118582,"name":"Physical sciences","url":"https://www.academia.edu/Documents/in/Physical_sciences?f_ri=7715","nofollow":false},{"id":149117,"name":"Magnetic Susceptibility","url":"https://www.academia.edu/Documents/in/Magnetic_Susceptibility?f_ri=7715"},{"id":151091,"name":"Nitrogen","url":"https://www.academia.edu/Documents/in/Nitrogen?f_ri=7715"},{"id":260118,"name":"CHEMICAL SCIENCES","url":"https://www.academia.edu/Documents/in/CHEMICAL_SCIENCES?f_ri=7715"},{"id":370891,"name":"Curie temperature","url":"https://www.academia.edu/Documents/in/Curie_temperature?f_ri=7715"},{"id":477072,"name":"Manganese Oxide","url":"https://www.academia.edu/Documents/in/Manganese_Oxide?f_ri=7715"},{"id":1468887,"name":"Gel Growth","url":"https://www.academia.edu/Documents/in/Gel_Growth?f_ri=7715"},{"id":2281850,"name":"Thermo Gravimetric Analysis","url":"https://www.academia.edu/Documents/in/Thermo_Gravimetric_Analysis?f_ri=7715"}]}, }) } })();</script></ul></li></ul></div></div><div class="u-borderBottom1 u-borderColorGrayLighter"><div class="clearfix u-pv7x u-mb0x js-work-card work_13705681" data-work_id="13705681" itemscope="itemscope" itemtype="https://schema.org/ScholarlyArticle"><div class="header"><div class="title u-fontSerif u-fs22 u-lineHeight1_3"><a class="u-tcGrayDarkest js-work-link" href="https://www.academia.edu/13705681/Magnetic_separations_From_steel_plants_to_biotechnology">Magnetic separations: From steel plants to biotechnology</a></div></div><div class="u-pb4x u-mt3x"></div><ul class="InlineList u-ph0x u-fs13"><li class="InlineList-item logged_in_only"><div class="share_on_academia_work_button"><a class="academia_share Button Button--inverseBlue Button--sm js-bookmark-button" 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The honeycomb core is modelled as a single solid layer of... <a class="more_link u-tcGrayDark u-linkUnstyled" data-container=".work_3393887" data-show=".complete" data-hide=".summarized" data-more-link-behavior="true" href="#">more</a></div><div class="complete hidden">In this paper, an experimental investigation, an analytical analysis and a numerical model of a typical four-point bending test on a honeycomb sandwich panel are proposed. The honeycomb core is modelled as a single solid layer of equivalent material properties. Analytical and numerical (finite element) homogenization approaches are used to compute the effective properties of the honeycomb core. A general kinematic model (unified formulation) has been adopted and used for the modelling of honeycomb sandwich panel submitted to the bending test. A comparative study of major classes of representative theories has been considered. 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