Exploring structural, optoelectronic, and thermoelectric properties of SrCaGe and SrCaSn half Heusler compounds

Author:

Bahara D.1,Al‐Qaisi Samah2,Akila Boumaza3,Dutta Ashim1ORCID,Mundad T.4,Alofi Ayman S.5,Bakkour Youssef6

Affiliation:

1. Department of Physics, College of Science and Innovation Calcutta University Kolkata India

2. Palestinian Ministry of Education and Higher Education Nablus Palestine

3. Radiation Physics Laboratory (LPR), Department of Physics, Faculty of Sciences Badji Mokhtar University Annaba Algeria

4. Department of Physics University of Burundi Bujumbura Burundi

5. Physics Department, College of Science Taibah University Medina Saudi Arabia

6. Department of Radiological Sciences, College of Applied Medical Sciences King Khalid University Abha Saudi Arabia

Abstract

AbstractMaking products that are affordable, environmentally friendly, and energy‐efficient is the main objective of modern production. The objective of this research is to discover compounds that meet these parameters. The full‐potential, linearized augmented plane wave program (FP LAPW) offered by Wien2K was used to examine the structural, optical, electrical, and transport aspects of SrCaGe and SrCaSn Half‐Heusler (HHs) compounds. Generalized gradient approximation (GGA) was considered for the structural optimization and computation of elastic properties signifies inherent ductility and mechanical stability of the examined SrCaGe and SrCaSn compounds. Additionally, both materials were found to possess a direct bandgap and exhibit semiconducting behavior. The bandgap magnitudes obtained utilizing the modified Becke‐Johnson (mBJ) approximation are 0.78 and 0.52 eV for SrCaGe and SrCaSn, respectively. According to their optical characteristics, SrCaGe and SrCaSn show potential for application in optoelectronic components. Furthermore, the transport properties are evaluated by BoltzTrap program, revealing that both SrCaGe and SrCaSn exhibit figures of merit (ZT) values nearly equal to one at room temperature. This suggests their potential use in creating thermoelectric devices with highly efficient performance. The simulation study demonstrates the promising attributes of SrCaGe and SrCaSn HHs materials, positioning them as viable candidates for various applications, aligned with the goals of sustainable and efficient manufacturing.

Funder

Deanship of Scientific Research, King Khalid University

Publisher

Wiley

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