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拓扑半金属ZrGe(S, Se, Te)中的各向异性晶格热导率:第一性原理研究

Anisotropic lattice thermal conductivity in topological semimetal ZrGe(S, Se, Te): a first-principles study.

作者信息

Zhou Yu, Liang A-Kun, Zeng Zhao-Yi, Chen Xiang-Rong, Geng Hua-Yun

机构信息

College of Physics, Sichuan University, Chengdu 610064, People's Republic of China.

Departamento de Física Aplicada-ICMUV-MALTA Consolider Team, Universitat de València, Burjassot (Valencia) 46100, Spain.

出版信息

J Phys Condens Matter. 2021 Jan 25;33(13). doi: 10.1088/1361-648X/abd8b9.

DOI:10.1088/1361-648X/abd8b9
PMID:33401256
Abstract

Topological semimetals have attracted significant attentions owing to their potential applications in numerous fields such as low-power electron devices and quantum computation, which are closely related to their thermal transport properties. In this work, the phonon transport properties of topological Dirac nodal-line semimetals ZrGe(= S, Se, Te) with the PbClF-type structures are systematically studied using the first-principles calculations combined with the Boltzmann transport theory. The obtained lattice thermal conductivities show an obvious anisotropy, which is caused by the layer structures of ZrGe(= S, Se, Te). The room-temperature lattice conductivity of ZrGeTe alongdirection is found to be as low as 0.24 W m K, indicating that it could be of great significance in the fields of thermal coating materials and solar cell absorber. In addition, we extract each phonon branch from group velocities, phonon scattering rates, Grüneisen parameters, and phase space volumes to investigate the mechanism underlying the low thermal conductivity. It is concluded that the difference of thermal conductivities of three materials may be caused by the number of scattering channels and the effect of anharmonic. Furthermore, the phonon mean free path alongdirection is relatively longer. Nanostructures or polycrystalline structures may be effective to reduce the thermal conductivity and improve the thermoelectric properties.

摘要

拓扑半金属因其在低功耗电子器件和量子计算等众多领域的潜在应用而备受关注,这些应用与它们的热输运性质密切相关。在这项工作中,结合第一性原理计算和玻尔兹曼输运理论,系统地研究了具有PbClF型结构的拓扑狄拉克节线半金属ZrGe(= S, Se, Te)的声子输运性质。所得晶格热导率呈现出明显的各向异性,这是由ZrGe(= S, Se, Te)的层状结构引起的。发现ZrGeTe沿方向的室温晶格电导率低至0.24 W m K,表明它在热涂层材料和太阳能电池吸收体领域可能具有重要意义。此外,我们从群速度、声子散射率、格林艾森参数和相空间体积中提取每个声子分支,以研究低热导率背后的机制。得出结论,三种材料热导率的差异可能是由散射通道数量和非谐效应引起的。此外,沿方向的声子平均自由程相对较长。纳米结构或多晶结构可能有效地降低热导率并改善热电性能。

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