Thermoelectric Transport of a Novel Zr‐Based Half‐Heusler High‐Entropy Alloy

Author:

Adamo Chalchisa Getachew12,Srivastava Ashutosh3ORCID,Legese Surafel Shiferaw2,Kawamura Yoshihito4,Serbesa Ayansa Tolesa12,Punathil Raman Sreeram5ORCID,Olu Femi Emmanuel1ORCID,Tiwary Chandra Sekhar5ORCID,Singh Abhishek Kumar3ORCID,Chattopadhyay Kamanio2

Affiliation:

1. Faculty of Materials Science and Engineering Jimma Institute of Technology Jimma University Jimma 378 Oromia Ethiopia

2. Department of Materials Engineering Indian Institute of Science Bangalore 560012 Karnataka India

3. Materials Research Centre Indian Institute of Science Bangalore 560012 Karnataka India

4. Magnesium Research Center Kumamoto University Kumamoto 8608555 Japan

5. Department of Metallurgical and Materials Engineering Indian Institute of Technology Kharagpur Kharagpur 721302 West Bengal India

Abstract

The high‐entropy concept, extensively studied in alloys and ceramics, has produced intriguing results, but its use in thermoelectric materials is still in its infancy. This study introduces a pioneering high‐entropy half‐Heusler (hH) alloy, ZrTiNiFeSnSb, synthesized via arc melting and heat treatment. Phonon scattering from multiple elements significantly reduces the lattice thermal conductivity of the alloy, which decreases to a minimum of 3.5 Wm1 K1 (700 K) in this material. The experimental thermal data matches the density functional theory calculations for phonon dispersion, phonon group velocity, and Grüneisen parameters. This demonstrates that crystal distortion induced anharmonicity slows the alloy's phonon heat transport, which is suitable for thermoelectric applications. Notably possessing elevated electrical conductivity and a moderate Seebeck coefficient, this high‐entropy hH alloy emerges as a promising thermoelectric material for energy harvesting.

Publisher

Wiley

Subject

General Energy

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