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A systematic first-principles investigation of the structural, electronic, mechanical, optical, and thermodynamic properties of Half-Heusler ANiX (ASc, Ti, Y, Zr, Hf; XBi, Sn) for spintronics and optoelectronics applications.

Authors :
Tarekuzzaman M
Ishraq MH
Rahman MA
Irfan A
Rahman MZ
Akter MS
Abedin S
Rayhan MA
Rasheduzzaman M
Hossen MM
Hasan MZ
Source :
Journal of computational chemistry [J Comput Chem] 2024 Nov 05; Vol. 45 (29), pp. 2476-2500. Date of Electronic Publication: 2024 Jul 05.
Publication Year :
2024

Abstract

This paper is the first to look at the structural, electronic, mechanical, optical, and thermodynamic properties of the ANiX (ASc, Ti, Y, Zr, Hf; XBi, Sn) half-Heusler (HH) using DFT based first principles method. The lattice parameters that we have calculated are very similar to those obtained in prior investigations with theoretical and experimental data. The positive phonon dispersion curve confirm the dynamical stability of ANiX (ASc, Ti, Y, Zr, Hf; XBi, Sn). The electronic band structure and DOS confirmed that the studied materials ANiX (ASc, Ti, Y, Zr, Hf; XBi, Sn) are direct band gap semiconductors. The investigation also determined significant constants, including dielectric function, absorption, conductivity, reflectivity, refractive index, and loss function. These optical observations unveiled our compounds potential utilization in various electronic and optoelectronic device applications. The elastic constants were used to fulfill the Born criteria, confirming the mechanical stability and ductility of the solids ANiX (ASc, Ti, Y, Zr, Hf; XBi, Sn). The calculated elastic modulus revealed that our studied compounds are elastically anisotropic. Moreover, ANiX (ASc, Ti, Y, Zr, Hf; XBi, Sn) has a very low minimum thermal conductivity (K <subscript>min</subscript> ), and a low Debye temperature (θ <subscript>D</subscript> ), which indicating their appropriateness for utilization in thermal barrier coating (TBC) applications. The Helmholtz free energy (F), internal energy (E), entropy (S), and specific heat capacity (Cv) are determined by calculations derived from the phonon density of states.<br /> (© 2024 Wiley Periodicals LLC.)

Details

Language :
English
ISSN :
1096-987X
Volume :
45
Issue :
29
Database :
MEDLINE
Journal :
Journal of computational chemistry
Publication Type :
Academic Journal
Accession number :
38970309
Full Text :
https://doi.org/10.1002/jcc.27455