Electron-phonon coupling and thermoelectric transport in n-type PbTe

J.D. Ouerales-Flores, J. Cao, R. Murphy, S. Fahy, I. Savić
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Abstract

PbTe is an important thermoelectric material for power generation applications due to its high conversion efficiency and reliability [1]. PbTe shows a shift of the electronic bandgap with temperature that is opposite to the majority of direct gap semiconductors, i.e. the gap increases with temperature [2]. In this work, we study the temperature dependence of the electronic structure and thermoelectric properties of PbTe. We perform density functional theory and density functional perturbation theory calculations [3] in the local density approximation to calculate electronic and phonon bands. We use Wannier interpolation scheme to calculate electron-phonon matrix elements [4]. Using this information, we build accurate models of electronic and phonon bands, and deformation potentials from first principles. By solving the Boltzmann equation in the momentum relaxation time approximation, we calculate the mobility and thermoelectric transport properties of PbTe. Our results are in good agreement with experiments. We find that the temperature dependence of the gap has a substantial effect on thermoelectric transport in PbTe.
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n型PbTe中的电子-声子耦合和热电输运
PbTe具有较高的转换效率和可靠性,是一种重要的发电热电材料[1]。与大多数直接隙半导体相反,PbTe显示出电子带隙随温度的变化,即带隙随温度的增加而增加[2]。在这项工作中,我们研究了PbTe的电子结构和热电性能的温度依赖性。我们在局部密度近似中进行密度泛函理论和密度泛函微扰理论计算[3],以计算电子和声子带。我们使用万尼尔插值格式来计算电子-声子矩阵元素[4]。利用这些信息,我们建立了电子和声子带的精确模型,以及从第一原理出发的变形势。通过求解动量松弛时间近似下的玻尔兹曼方程,计算了PbTe的迁移率和热电输运性质。我们的研究结果与实验结果吻合得很好。我们发现间隙的温度依赖性对PbTe的热电输运有实质性的影响。
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