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SnSe中的两步相变及其高功率因子起源的第一性原理研究

Two-Step Phase Transition in SnSe and the Origins of its High Power Factor from First Principles.

作者信息

Dewandre Antoine, Hellman Olle, Bhattacharya Sandip, Romero Aldo H, Madsen Georg K H, Verstraete Matthieu J

机构信息

CESAM, QMAT, European Theoretical Spectroscopy Facility, Université de Liège, allée du 6 août, 19, B-4000 Liège, Belgium.

Division of Engineering and Applied Science, California Institute of Technology, Pasadena, California 91125, USA.

出版信息

Phys Rev Lett. 2016 Dec 30;117(27):276601. doi: 10.1103/PhysRevLett.117.276601.

Abstract

The interest in improving the thermoelectric response of bulk materials has received a boost after it has been recognized that layered materials, in particular SnSe, show a very large thermoelectric figure of merit. This result has received great attention while it is now possible to conceive other similar materials or experimental methods to improve this value. Before we can now think of engineering this material it is important we understand the basic mechanism that explains this unusual behavior, where very low thermal conductivity and a high thermopower result from a delicate balance between the crystal and electronic structure. In this Letter, we present a complete temperature evolution of the Seebeck coefficient as the material undergoes a soft crystal transformation and its consequences on other properties within SnSe by means of first-principles calculations. Our results are able to explain the full range of considered experimental temperatures.

摘要

在认识到层状材料,特别是SnSe,具有非常大的热电优值之后,提高块状材料热电响应的研究受到了推动。这一结果受到了极大关注,同时现在有可能设想其他类似材料或实验方法来提高这一数值。在我们能够考虑对这种材料进行工程设计之前,重要的是我们要理解解释这种异常行为的基本机制,即非常低的热导率和高热电势是由晶体结构和电子结构之间的微妙平衡产生的。在本信函中,我们通过第一性原理计算,展示了随着材料经历软晶体转变,塞贝克系数随温度的完整变化过程及其对SnSe中其他性质的影响。我们的结果能够解释所考虑的整个实验温度范围。

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