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压力诱导 CoSb 和 IrSb 型 skutterudites 具有优异的热电性能。

Pressure induced excellent thermoelectric behavior in skutterudites CoSb and IrSb.

机构信息

Department of Physics, Yantai University, Yantai 264005, People's Republic of China.

出版信息

Phys Chem Chem Phys. 2019 Jan 2;21(2):851-858. doi: 10.1039/c8cp04301a.

Abstract

Utilizing the first-principle calculations combined with Boltzmann transport equation (BTE) and semiclassical analysis, we have systematically investigated the electronic structure, lattice thermal conductivity κL, Seebeck coefficient S, and the dimensionless figure of merit zT as a function of hydrostatic pressure P in crystalline skutterudites CoSb3 and IrSb3. Interestingly, as the pressure increases, the band gap and κL show an approximate parabolic trend, which results in extraordinarily high S and excellent thermoelectric properties, and zT even exceeds 1.4(1.09) in IrSb3(CoSb3) at 54(58) GPa. This anomalous behavior arises from the electron distribution and intrinsic scattering processes. Further analyses indicate that (i) nonbonding electron pairs of Sb atoms are gradually transferred to the region between Co(Ir) and Sb atoms as the pressure increases, which leads to the formation of a partial metallic bond and thus the band gap first expands and then shrinks; (ii) the change of the strength of the anharmonic phonon scattering process results in the variation of κL. As a result, these behaviors cause excellent thermoelectric properties. Our results provide insight into the thermal transport properties of skutterudites, meanwhile, forecast potential high pressure applications for thermoelectric materials.

摘要

利用第一性原理计算结合玻尔兹曼输运方程(BTE)和半经典分析,我们系统地研究了晶体 skutterudites CoSb3 和 IrSb3 中电子结构、晶格热导率 κL、塞贝克系数 S 和无量纲品质因数 zT 随静水压力 P 的变化。有趣的是,随着压力的增加,带隙和 κL 呈现出近似抛物线的趋势,这导致了异常高的 S 和优异的热电性能,在 54(58)GPa 时,zT 在 IrSb3(CoSb3)中甚至超过 1.4(1.09)。这种异常行为源于电子分布和内在散射过程。进一步的分析表明:(i)随着压力的增加,Sb 原子的非键电子对逐渐转移到 Co(Ir)和 Sb 原子之间的区域,导致部分金属键的形成,从而导致带隙先扩展后收缩;(ii)非谐声子散射过程强度的变化导致 κL 的变化。因此,这些行为导致了优异的热电性能。我们的结果为 skutterudites 的热输运性质提供了深入的了解,同时预测了热电材料在高压下的潜在应用。

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