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基于密度泛函理论的过渡金属氢化物VH的结构、电子和热电性质的计算研究

DFT-based computational investigation of the structural, electronic, and thermoelectric properties of transition-metal hydride VH.

机构信息

Department of Physical and Numerical Sciences, Qurtuba University of Science and Information Technology, Peshawar, 25100, Pakistan.

出版信息

J Mol Model. 2024 Dec 21;31(1):28. doi: 10.1007/s00894-024-06238-y.

Abstract

CONTEXT

Vanadium hydride is of significant interest because of its potential applications in thermoelectric materials and hydrogen storage technologies. Understanding its structural, electronic, and thermoelectric properties is crucial for optimizing its performance in these applications. This study investigates these properties via density functional theory (DFT), revealing key insights into its stability and efficiency as a thermoelectric material.

METHODS

In this work, the structural, electronic, and thermoelectric properties of cubic VH were investigated using the GGA approach within the framework of DFT. The band structure and density of states demonstrate the metallic nature of these compounds. Using the semi-empirical Boltzmann's approach implemented in the BoltzTraP code, transport parameters, such as the Seebeck coefficient, electrical conductivity, thermal conductivity, and figure of merit as a function of the chemical potential, are computed at a temperature gradient of 500 K. For the VH compound, the thermal and electrical conductivities and Seebeck coefficient are greater for p-type doping and n-type doping. The moderate values of the figure of merit obtained for these materials indicate that these materials have applicability where small values of thermoelectric efficiency are required, and higher values can harm the process. The maximum values of the Seebeck coefficient for VH against chemical potential values ranging between 0.095 and - 0.095 eV in the p-type region and n-type region are 2.28 µV/K and - 2.27 µV/K, respectively. The highest value of electrical conductivity per relaxation time in the chemical potential range between - 0.07 and 0.07 eV in the p-type region is 5.3 × 101/Ωms, and that in the n-type region is 1.97 × 101/Ωms. The maximum dimensionless figure of merit value for VH is 0.020.

摘要

背景

氢化钒因其在热电材料和储氢技术中的潜在应用而备受关注。了解其结构、电子和热电性能对于优化其在这些应用中的性能至关重要。本研究通过密度泛函理论(DFT)研究这些性能,揭示了其作为热电材料的稳定性和效率的关键见解。

方法

在这项工作中,使用DFT框架内的广义梯度近似(GGA)方法研究了立方VH的结构、电子和热电性能。能带结构和态密度证明了这些化合物的金属性质。使用BoltzTraP代码中实现的半经验玻尔兹曼方法,在500 K的温度梯度下计算了输运参数,如塞贝克系数、电导率、热导率和优值随化学势的变化。对于VH化合物,p型掺杂和n型掺杂的热导率、电导率和塞贝克系数都更大。这些材料获得的适度优值表明,这些材料适用于需要小热电效率值的情况,而较高的值可能会对过程造成损害。在p型区域和n型区域中,VH的塞贝克系数相对于化学势值在0.095至 -0.095 eV之间的最大值分别为2.28 μV/K和 -2.27 μV/K。在p型区域中,化学势范围在 -0.07至0.07 eV之间时,每弛豫时间的最高电导率值为5.3×10¹/Ωms,在n型区域中为1.97×10¹/Ωms。VH的最大无量纲优值为0.020。

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