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熵诱导的多谷能带结构改善了-CuP(SSe) 硫银锗矿的热电性能。

Entropy-Induced Multivalley Band Structures Improve Thermoelectric Performance in -CuP(SSe) Argyrodites.

作者信息

Cherniushok Oleksandr, Parashchuk Taras, Tobola Janusz, Luu Son D N, Pogodin Artem, Kokhan Oleksandr, Studenyak Ihor, Barchiy Igor, Piasecki Michal, Wojciechowski Krzysztof T

机构信息

Thermoelectric Research Laboratory, Department of Inorganic Chemistry, Faculty of Materials Science and Ceramics, AGH University of Science and Technology, 30 Mickiewicza Avenue, 30-059 Krakow, Poland.

Lukasiewicz Research Network, Krakow Institute of Technology, Zakopianska 73, 30-418 Krakow, Poland.

出版信息

ACS Appl Mater Interfaces. 2021 Aug 25;13(33):39606-39620. doi: 10.1021/acsami.1c11193. Epub 2021 Aug 13.

Abstract

Searching for novel low-cost and eco-friendly materials for energy conversion is a good way to provide widespread utilization of thermoelectric technologies. Herein, we report the thermal behavior, phase equilibria data, and thermoelectric properties for the promising argyrodite-based CuP(SSe) thermoelectrics. Alloying of CuPSe with CuPS provides a continuous solid solution over the whole compositional range, as shown in the proposed phase diagram for the CuPS-CuPSe system. As a member of liquid-like materials, the investigated CuP(SSe) solid solutions possess a dramatically low lattice thermal conductivity, as low as ∼0.2-0.3 W m K, over the entire temperature range. Engineering the configurational entropy of the material by introducing more elements stabilizes the thermoelectrically beneficial high-symmetry γ-phase and promotes the multivalley electronic structure of the valence band. As a result, a remarkable improvement of the Seebeck coefficient and a reduction of electrical resistivity were observed for the investigated alloys. The combined effect of the extremely low lattice thermal conductivity and enhanced power factor leads to the significant enhancement of the thermoelectric figure of merit up to ∼0.75 at 673 K for the CuP(SSe) ( = 0.5) sample with the highest configurational entropy, which is around twice higher compared with the pure selenide and almost four times higher than sulfide. This work not only demonstrates the large potential of CuP(SSe) materials for energy conversion but also promotes sulfide argyrodites as earth-abundant and environmentally friendly materials for energy conversion.

摘要

寻找新型低成本且环保的能量转换材料是实现热电技术广泛应用的一个好方法。在此,我们报告了具有前景的硫银锗矿基CuP(SSe)热电材料的热行为、相平衡数据及热电性能。CuPSe与CuPS合金化在整个成分范围内提供了连续固溶体,如CuPS - CuPSe体系的拟相图所示。作为类液态材料的一员,所研究的CuP(SSe)固溶体在整个温度范围内具有极低的晶格热导率,低至约0.2 - 0.3 W m⁻¹ K⁻¹。通过引入更多元素来调控材料的组态熵,可稳定热电性能有利的高对称γ相,并促进价带的多谷电子结构。结果,在所研究的合金中观察到塞贝克系数显著提高且电阻率降低。极低的晶格热导率和增强的功率因子的综合作用,使得具有最高组态熵的CuP(SSe)(x = 0.5)样品在673 K时热电优值显著提高至约0.75,这比纯硒化物高出约两倍,比硫化物高出近四倍。这项工作不仅证明了CuP(SSe)材料在能量转换方面的巨大潜力,还推动了硫银锗矿硫化物作为储量丰富且环境友好的能量转换材料的发展。

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