Analysis of the Electronic, Magnetic, Elasto‐Mechanical, Thermoelectric, and Thermodynamic Potential of Ruthenium‐Based Full Heusler Alloys Ru2MnX (X = V and Nb)

Author:

Ahmad Dar Sajad12ORCID,Singh Joginder23,Sharma Ramesh4,Al‐Muhimeed Tahani I.5,Nazir Ghazanfar6,Srivastava Vipul7

Affiliation:

1. Department of Physics Government Motilal Vigyan Mahavidyalaya Bhopal Madhya Pradesh 462008 India

2. Department of Physics Government Degree College, Nowshera Jammu Jammu and Kashmir 185151 India

3. Department of Physics Shri Jagdish Prasad Jhabarmal Tibrewala University Vidyanagari Jhunjhunu Rajasthan 333010 India

4. Department of Applied Science Feroze Gandhi Institute of Engineering & Technology Raebareli Uttar Pradesh 229001 India

5. Department of Chemistry College of Science King Saud University P.O. Box 22452 Riyadh 11451 Saudi Arabia

6. Department of Nanotechnology and Advanced Materials Engineering Sejong University Seoul 05006 the Republic of Korea

7. Department of Physics School of Chemical Engineering & Physical Sciences Lovely Professional University Phagwara Jalandhar Punjab 144411 India

Abstract

In the search for new and novel materials for various thermo‐physical applications, we have reported the magnetic, electronic, mechanical, thermal, and thermoelectric transport properties of two full Heusler alloys (HAs), Ru2MnV and Ru2MnNb. In order to obtain a stable structure, volume optimization was carried out in the Fm‐3m (225) and F43‐m (216) space groups. The Fm‐3m space group was found to be a stable phase for both alloys. Electronic results show the metallic nature of these alloys. Ferromagnetic moments of 4.06 and 4.18 μB were obtained for Ru2MnV and Ru2MnNb, respectively. Mechanical results show a brittle nature for Ru2MnV and a ductile nature for Ru2MnNb with a high melting temperature for Ru2MnV. Thermoelectric properties such as figure of merit along with Seebeck coefficient, electrical conductivity, power factor, and thermal conductivity have also been calculated. Furthermore, the thermodynamic results of the studied materials have also been evaluated to understand the nature of various thermodynamic parameters with respect to temperature and pressure.

Publisher

Wiley

Subject

Condensed Matter Physics,Electronic, Optical and Magnetic Materials

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