金属卤化物热电:高性能CsCu2I3的预测

Jong Woong Park, Young-Kwang Jung, Aron Walsh
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引用次数: 0

摘要

热电装置可以直接将余热转化为电能,这使其成为重要的清洁能源技术。底层材料的性能可以用无因次性能曲线ZT来评价。金属卤化物因其化学柔韧性和易于加工而成为有吸引力的候选者;然而,实现的最大ZT (ZT=0.15)远远低于商业化所需的水平(ZT>1)。利用第一性原理程序,我们评估了具有一维Cu-I连接性的卤化铜CsCu2I3的热电势。预测n型晶体在沿b轴600 K处ZT最大值为2.2。该体系的强声子非调和性表现在局部稳定的非中心对称Amm2结构上,这些结构被平均形成观测到的中心对称Cmcm空间群。我们的工作为金属卤化物热电材料的结构-性能关系提供了见解,并为设计更高性能的热电转换提供了一条前进的道路根据知识共享署名4.0国际许可协议,美国物理学会于2023年8月24日接受doi:https://doi.org/10.1103/PRXEnergy.2.043004Published。这项工作的进一步分发必须保持作者的归属和已发表文章的标题,期刊引用和DOI。发表于美国物理学会物理学科标题(PhySH)研究领域能源材料第一性原理计算热电凝聚态材料与应用物理能源科学与技术
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Metal Halide Thermoelectrics: Prediction of High-Performance CsCu2I3
Thermoelectric devices can directly convert waste heat into electricity, which makes them an important clean energy technology. The underlying materials performance can be evaluated by the dimensionless figure of merit ZT. Metal halides are attractive candidates due to their chemical flexibility and ease of processing; however, the maximum ZT realized (ZT=0.15) falls far below the level needed for commercialization (ZT>1). Using a first-principles procedure, we assess the thermoelectric potential of copper halide CsCu2I3, which features one-dimensional Cu-I connectivity. The n-type crystal is predicted to exhibit a maximum ZT of 2.2 at 600 K along the b axis. The strong phonon anharmonicity of this system is shown by locally stable noncentrosymmetric Amm2 structures that are averaged to form the observed centrosymmetric Cmcm space group. Our work provides insights into the structure-property relations in metal halide thermoelectrics and suggests a path forward to engineer higher-performance heat-to-electricity conversion.3 MoreReceived 5 May 2023Revised 8 August 2023Accepted 24 August 2023DOI:https://doi.org/10.1103/PRXEnergy.2.043004Published by the American Physical Society under the terms of the Creative Commons Attribution 4.0 International license. Further distribution of this work must maintain attribution to the author(s) and the published article's title, journal citation, and DOI.Published by the American Physical SocietyPhysics Subject Headings (PhySH)Research AreasEnergy materialsFirst-principles calculationsThermoelectricsCondensed Matter, Materials & Applied PhysicsEnergy Science & Technology
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