基于第一性原理计算的三角形Cu2SrSnS4光伏吸收体的结构、振动和电子性质

Sriram Poyyapakkam Ramkumar
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引用次数: 1

摘要

在为光伏应用寻找可持续替代吸收材料的过程中,硫族化合物提供了一个很有前途的解决方案。虽然最常见的Cu2ZnSnS4基kesterite太阳能电池似乎存在固有的缺陷,如Cu-Zn位点的缺陷和反无序导致的效率低,但人们已经考虑在Cu/Zn位点上取代其他元素。在这个方向上,Cu2(Ba,Sr) SnS4提供了一个有趣的替代方案,因为它们可能有助于限制系统中固有的反位点紊乱,这是与效率损失有关的主要问题。在这项研究中,我们报告了用第一性原理密度泛函理论计算的三角形结构Cu2SrSnS4四元体系的结构、振动和电子性质,为进一步表征和分析这类材料铺平了道路。印度材料科学研究www.materialsciencejournal.org ISSN: 0973-3469, Vol.17, (Special Issue) 2020, Pg. 07-12 CONTACT Sriram Poyyapakkam Ramkumar srirampr.nitt@gmail.com美国加州大学材料科学与工程系,Merced, Merced, USA。©2020作者。这是一篇基于知识共享署名-非商业性-相同方式共享4.0国际许可协议的开放获取文章Doi: http://dx.doi.org/10.13005/msri.17.special-issue1.03文章历史收稿日期:2020年5月31日接受日期:2020年7月17日
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Structural, Vibrational, and Electronic Properties of Trigonal Cu2SrSnS4 Photovoltaic Absorber from First-Principles Calculations
In the search for sustainable alternate absorber materials for photovoltaic applications, the family of chalcogenides provide a promising solution. While the most commonly studied Cu2ZnSnS4 based kesterite solar cells seem to have intrinsic drawbacks such as low-efficiency arising from defects and anti-disorder in the Cu-Zn sites, substituting other elements in the Cu/Zn sites have been considered. In this direction, Cu2(Ba,Sr) SnS4 provide an interesting alternative as they possibly help limit the intrinsic anti-site disorder in the system which is of primary concern with regard to efficiency loses. In this study, we report the structural, vibrational, and electronic properties of trigonal structured Cu2SrSnS4 quarternary system computed from first-principles density functional theory paving way for further characterization and analysis within this class of materials. Material Science Research India www.materialsciencejournal.org ISSN: 0973-3469, Vol.17, (Special Issue) 2020, Pg. 07-12 CONTACT Sriram Poyyapakkam Ramkumar srirampr.nitt@gmail.com Department of Materials Science and Engineering, University of California, Merced, Merced, USA. © 2020 The Author(s). Published by Oriental Scientific Publishing Company This is an Open Access article licensed under a Creative Commons Attribution-NonCommercial-ShareAlike 4.0 International License Doi: http://dx.doi.org/10.13005/msri.17.special-issue1.03 Article History Received: 31 May 2020 Accepted: 17 July 2020
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