铋
热电材料
非谐性
热电效应
凝聚态物理
功勋
材料科学
兴奋剂
塞贝克系数
玻尔兹曼常数
声子
密度泛函理论
玻尔兹曼方程
热导率
冶金
热力学
物理
光电子学
量子力学
复合材料
作者
Joseph M. Flitcroft,Adel Althubiani,Jonathan M. Skelton
出处
期刊:JPhys energy
[IOP Publishing]
日期:2024-02-20
卷期号:6 (2): 025011-025011
被引量:7
标识
DOI:10.1088/2515-7655/ad2afd
摘要
Abstract We present a detailed theoretical study of the thermoelectric properties of the bismuth oxychalcogenides Bi 2 ChO 2 (Ch = S, Se, Te). The electrical transport is modelled using semi-classical Boltzmann transport theory with electronic structures from hybrid density-functional theory, including an approximate model for the electron lifetimes. The lattice thermal conductivity is calculated using first-principles phonon calculations with an explicit treatment of anharmonicity, yielding microscopic insight into how partial replacement of the chalcogen in the bismuth chalcogenides impacts the phonon transport. We find very good agreement between the predicted transport properties and a favourable cancellation of errors that allows for near-quantitative predictions of the thermoelectric figure of merit ZT . Our calculations suggest recent experiments on n-doped Bi 2 SeO 2 have achieved close to the largest ZT possible in bulk materials, whereas the largest reported ZT for Bi 2 TeO 2 could be improved sixfold by optimising the carrier concentration. We also predict that much larger ZT > 2.5, competitive with the benchmark thermoelectric SnSe, could be obtained for Bi 2 SO 2 and Bi 2 SeO 2 with heavy p-type doping. This study demonstrates the predictive power of this modelling approach for studying thermoelectrics and highlights several avenues for improving the performance of the Bi 2 ChO 2 .
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