Structural, electronic, magnetic and thermoelectric properties of Tl2NbX6 (X = Cl, Br) variant perovskites calculated via density functional theory

Author:

Ali Malak Azmat1ORCID,Bahajjaj Aboud Ahmed Awadh2,Al‐Qaisi Samah3,Sillanpää Mika4,Khan Afzal5,Wang Xiaoyu6

Affiliation:

1. Department of Physics Government Post Graduate Jahanzeb College Saidu Sharif Swat Pakistan

2. Chemistry Department, College of Science King Saud University Riyadh Saudi Arabia

3. Palestinian Ministry of Education and Higher Education Nablus Palestine

4. Department of Biological and Chemical Engineering Aarhus University Aarhus Denmark

5. Department of Physics University of Peshawar Peshawar Pakistan

6. State Key Labortory of Superhard Materials, Key Labortory of Automobile Mateials of MOE, Jilin Provential Intenational Cooperation Key Labortory of High‐Efficiency Clean Energy Materials, School of Materials Science and Engineering Jilin University Changchun China

Abstract

AbstractThis article presents detailed structural, electronic, magnetic, and thermoelectric properties of two experimentally existing isostructural variant perovskite compounds Tl2NbX6 (X = Cl, Br) with the help of first principles calculations. As per requirement of stability in the device applications, the structural and thermodynamic stabilities were, respectively verified by tolerance factor and negative formation energies. The structural parameters in ferromagnetic phase were calculated and found in close agreement with the available experimental results. The electronic nature was found as half metallic from spin polarized calculations of electronic band structures and density of states, where the semiconductor nature was found in the spin down states and metallic nature in the spin up states. The magnetic moments of both the compounds were calculated as 1 μB majorly contributed by Nb atom. The Boltzmann transport theory was implemented via BoltzTraP for calculating the spin resolved thermoelectric parameters, such as Seebeck coefficient, electronic and thermal conductivities, and figure of merit. Overall, both the compounds were found suitable for use in spintronics and spin Seebeck effect for energy applications.

Publisher

Wiley

Subject

Computational Mathematics,General Chemistry

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