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层状材料LaMOCh(M = Cu,Ag;Ch = S,Se)中的超低热导率和各向异性热电性能。

Ultralow thermal conductivity and anisotropic thermoelectric performance in layered materials LaMOCh (M = Cu, Ag; Ch = S, Se).

作者信息

Ma Jiang-Jiang, Liu Qing-Yi, Liu Peng-Fei, Zhang Ping, Sanyal Biplab, Ouyang Tao, Wang Bao-Tian

机构信息

Institute of High Energy Physics, Chinese Academy of Sciences (CAS), Beijing 100049, China.

Spallation Neutron Source Science Center (SNSSC), Dongguan 523803, China.

出版信息

Phys Chem Chem Phys. 2022 Sep 14;24(35):21261-21269. doi: 10.1039/d2cp02067j.

DOI:10.1039/d2cp02067j
PMID:36040434
Abstract

In layered materials with the stacking axis perpendicular to the basal plane, anharmonicity strongly affects phonon propagation due to weak interlayer coupling, which is helpful to reduce the lattice thermal conductivity and improve the thermoelectric (TE) performance significantly. By combining first-principles calculations and the Boltzmann transport equation, we systematically analyzed and evaluated the lattice thermal conductivity and TE properties of LaMOCh (M = Cu, Ag; Ch = S, Se). The results indicate that these layered materials exhibit ultralow lattice thermal conductivities of 0.24-0.37 W m K along the interlayer direction at room temperature. The low lattice thermal conductivities have been analyzed from some inherent phonon properties, such as low acoustic phonon group velocity, large Grüneisen parameters, and a short phonon relaxation time. Originating from their natural layered crystal structure, the thermal and electronic transports (, thermal conductivity, Seebeck coefficient, and electrical conductivity) are both highly anisotropic between their intralayer and interlayer directions. Finally, we obtained values of 1.17 and 1.26 at 900 K along the interlayer direction for -type LaCuOSe and LaAgOSe, respectively. Generally, LaMOSe exhibit larger anisotropy than LaMOS, in both - and -types of doping. Our findings of low thermal conductivities and large anisotropic TE performances of these layered systems should stimulate much attention in BiCuOSe and alike layered TE families.

摘要

在堆叠轴垂直于基面的层状材料中,由于层间耦合较弱,非谐性对声子传播有强烈影响,这有助于降低晶格热导率并显著提高热电(TE)性能。通过结合第一性原理计算和玻尔兹曼输运方程,我们系统地分析和评估了LaMOCh(M = Cu,Ag;Ch = S,Se)的晶格热导率和TE性能。结果表明,这些层状材料在室温下沿层间方向表现出0.24 - 0.37 W m K的超低晶格热导率。已从一些固有的声子特性,如低声学声子群速度、大格林艾森参数和短声子弛豫时间等方面分析了低晶格热导率的原因。由于其天然的层状晶体结构,热输运和电子输运(即热导率、塞贝克系数和电导率)在层内和层间方向上都具有高度各向异性。最后,对于n型LaCuOSe和LaAgOSe,我们在900 K时沿层间方向分别获得了1.17和1.26的ZT值。一般来说,在n型和p型掺杂中,LaMOSe比LaMOS表现出更大的各向异性。我们对这些层状体系低热导率和大各向异性TE性能的研究结果应会引起BiCuOSe及类似层状TE家族的广泛关注。

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