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二维CuMN(M = Sb,Bi;N = S,Se)在室温下具有优异的热电性能。

Excellent Thermoelectric Performance of 2D CuMN (M = Sb, Bi; N = S, Se) at Room Temperature.

作者信息

Fang Wenyu, Chen Yue, Kuang Kuan, Li Mingkai

机构信息

Ministry-of-Education Key Laboratory of Green Preparation and Application for Functional Materials, Hubei Key Lab of Ferro & Piezoelectric Materials and Devices, Hubei Key Laboratory of Polymer Materials, and School of Materials Science & Engineering, Hubei University, Wuhan 430062, China.

Public Health and Management School, Hubei University of Medicine, Shiyan 442000, China.

出版信息

Materials (Basel). 2022 Sep 27;15(19):6700. doi: 10.3390/ma15196700.

Abstract

2D copper-based semiconductors generally possess low lattice thermal conductivity due to their strong anharmonic scattering and quantum confinement effect, making them promising candidate materials in the field of high-performance thermoelectric devices. In this work, we proposed four 2D copper-based materials, namely CuSbS, CuSbSe, CuBiS, and CuBiSe. Based on the framework of density functional theory and Boltzmann transport equation, we revealed that the monolayers possess high stability and narrow band gaps of 0.571.10 eV. Moreover, the high carrier mobilities (1010 cm·V·s) of these monolayers lead to high conductivities (1010 Ω·m) and high-power factors (18.0447.34 mW/mK). Besides, as the strong phonon-phonon anharmonic scattering, the monolayers also show ultra-low lattice thermal conductivities of 0.233.30 W/mK at 300 K. As results show, all the monolayers for both p-type and n-type simultaneously show high thermoelectric figure of merit () of about 0.911.53 at room temperature.

摘要

二维铜基半导体由于其强烈的非谐散射和量子限制效应,通常具有较低的晶格热导率,这使得它们成为高性能热电器件领域有前景的候选材料。在这项工作中,我们提出了四种二维铜基材料,即CuSbS、CuSbSe、CuBiS和CuBiSe。基于密度泛函理论和玻尔兹曼输运方程的框架,我们揭示了这些单层材料具有高稳定性和0.571.10 eV的窄带隙。此外,这些单层材料的高载流子迁移率(1010 cm·V·s)导致高电导率(1010 Ω·m)和高功率因子(18.0447.34 mW/mK)。此外,由于强烈的声子-声子非谐散射,这些单层材料在300 K时还表现出0.233.30 W/mK的超低晶格热导率。结果表明,所有p型和n型单层材料在室温下同时表现出约0.911.53的高热电优值()。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0eda/9572028/3e6490d685ae/materials-15-06700-g001.jpg

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