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在同时引入镓和碲的 CuSnS 中热电性能的显著改善。

Remarkable Improvement of Thermoelectric Performance in Ga and Te Cointroduced CuSnS.

作者信息

He Song, Luo Yong, Xu Liangliang, Wang Yue, Han Zhongkang, Li Xie, Cui Jiaolin

机构信息

School of Materials Science and Engineering, China University of Mining and Technology, Xuzhou 221116, China.

School of Materials and Chemical Engineering, Ningbo University of Technology, Ningbo 315016, China.

出版信息

Inorg Chem. 2021 Aug 2;60(15):11120-11128. doi: 10.1021/acs.inorgchem.1c01028. Epub 2021 Jul 21.

Abstract

Ternary sulfide CuSnS (CTS) receives growing interest in photocatalytic and gas sensing applications; however, limited attention has been paid to the application in thermoelectrics in virtue of its intrinsic high carrier concentration. In this work, a high figure of merit of Ga (ZT) and Te cointroduced CTS with the composition of (CuSnS)(GaTe) ( = 0.105) has been realized via synergistic optimization of the electronic and thermal transport properties. The incorporation of Ga into CTS results in a downshift of both the conduction and valence bands, which effectively promotes the active hybridization of Sn 5s and S 3p orbitals near the Fermi level () and optimizes the carrier concentration. In the meantime, the lattice thermal conductivity (κ) generally decreases on account of the local internal distortion induced by Ga(Te) substitution at the Cu(S) site. Moreover, the phonon transport is greatly suppressed above ∼725 K attributed to the melting of the second-phase Te on the grain boundaries. Consequently, the highest ZT value of ∼0.96 is obtained at 798 K. This value is ∼3.6 times that of the pristine CTS and ranks the highest in the CTS system to date.

摘要

三元硫化物CuSnS(CTS)在光催化和气体传感应用中受到越来越多的关注;然而,由于其固有的高载流子浓度,在热电学中的应用受到的关注有限。在这项工作中,通过对电子和热传输特性的协同优化,实现了具有(CuSnS)(GaTe)(= 0.105)组成的Ga(ZT)和Te共引入CTS的高优值。将Ga掺入CTS会导致导带和价带均向下移动,这有效地促进了费米能级()附近Sn 5s和S 3p轨道的有效杂化,并优化了载流子浓度。同时,由于Cu(S)位点上的Ga(Te)取代引起的局部内部畸变,晶格热导率(κ)通常会降低。此外,由于晶界上第二相Te的熔化,在约725 K以上声子传输受到极大抑制。因此,在798 K时获得了约0.96的最高ZT值。该值约为原始CTS的3.6倍,是迄今为止CTS系统中最高的。

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