Thermoelectric properties of marcasite-type compounds MSb2 (M = Ta, Nb): a combined experimental and computational study

塞贝克系数 放电等离子烧结 热电效应 结构精修 大气温度范围 化学 费米能级 玻尔兹曼方程 单斜晶系 凝聚态物理 材料科学 分析化学(期刊) 热力学 电子 烧结 结晶学 物理 晶体结构 有机化学 量子力学
作者
Saquib Shamim,Naoki Sato,Takao Mori
出处
期刊:Journal of Physics: Condensed Matter [IOP Publishing]
卷期号:37 (13): 135701-135701 被引量:1
标识
DOI:10.1088/1361-648x/adb409
摘要

Abstract Here, we investigate the thermoelectric properties of the marcasite-type compounds MSb 2 (M = Ta, Nb) in the temperature range of 310–730 K. These compounds were synthesized by a solid-state reaction followed by the spark plasma sintering process. The Rietveld refinement method confirms the monoclinic phase with space group C 2/ m for both compounds. The observed values of Seebeck coefficients exhibit non-monotonic behaviour in the studied temperature range, with the maximum magnitude of −14.4 and −22.7 µ V K −1 for TaSb 2 and NbSb 2 , respectively at ∼444 K. The negative sign of S in the full temperature window signifies the n -type behaviour of these compounds. Both electrical and thermal conductivities show decreasing trends with increasing temperature. The experimentally observed thermoelectric properties are understood through the first-principles DFT and Boltzmann transport equation. A pseudogap in the density of states around the Fermi level characterizes the semimetallic behaviour of these compounds. The multi-band electron and hole pockets were found to be mainly responsible for the temperature dependence of transport properties. The experimental power factors are found to be ∼0.09 and ∼0.42 mW m −1 K −2 at 300 K for TaSb 2 and NbSb 2 , respectively. We found that there is much room for improvement of power factor by tuning carrier concentration. The DFT-based calculations predict the maximum possible power factors at fairly high doping concentrations. The present study suggests that the combined DFT and Boltzmann transport theory are found to be reasonably good at explaining the experimental transport properties, and moderate power factors are predicted.
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