Elastic properties of transition metal dichalcogenides

Fuente: arXiv
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Autori principali: Azadi, S., Azhar, A., Belosludov, R. V., Kühne, T. D., Bahramy, M. S.
Natura: Preprint
Pubblicazione: 2025
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author Azadi, S.
Azhar, A.
Belosludov, R. V.
Kühne, T. D.
Bahramy, M. S.
author_facet Azadi, S.
Azhar, A.
Belosludov, R. V.
Kühne, T. D.
Bahramy, M. S.
contents We present a comprehensive first-principles study of the structural and elastic properties of 2H-MX$_2$ transition metal dichalcogenides (TMDs) (M = W, Mo, Ta, Nb; X = S, Se). Using density functional theory with various van der Waals exchange-correlation functionals, we systematically investigate the influence of nonlocal interactions on lattice parameters, elastic constants, and mechanical moduli. Our results reveal a fundamental distinction between semiconducting and metallic TMDs: metallic compounds exhibit larger in-plane lattice parameters and reduced interlayer spacing, consistent with their bonding characteristics. We find that metallic TMDs display significantly lower in-plane stiffness and shear modulus compared to their semiconducting counterparts. We discuss this behaviour in the context of the observed charge density waves. In addition, we establish clear trends in the bulk, Young's, and shear moduli, demonstrating the role of atomic number and chemical composition in determining mechanical stability.
format Preprint
id arxiv_https___arxiv_org_abs_2505_05891
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Elastic properties of transition metal dichalcogenides
Azadi, S.
Azhar, A.
Belosludov, R. V.
Kühne, T. D.
Bahramy, M. S.
Materials Science
Computational Physics
We present a comprehensive first-principles study of the structural and elastic properties of 2H-MX$_2$ transition metal dichalcogenides (TMDs) (M = W, Mo, Ta, Nb; X = S, Se). Using density functional theory with various van der Waals exchange-correlation functionals, we systematically investigate the influence of nonlocal interactions on lattice parameters, elastic constants, and mechanical moduli. Our results reveal a fundamental distinction between semiconducting and metallic TMDs: metallic compounds exhibit larger in-plane lattice parameters and reduced interlayer spacing, consistent with their bonding characteristics. We find that metallic TMDs display significantly lower in-plane stiffness and shear modulus compared to their semiconducting counterparts. We discuss this behaviour in the context of the observed charge density waves. In addition, we establish clear trends in the bulk, Young's, and shear moduli, demonstrating the role of atomic number and chemical composition in determining mechanical stability.
title Elastic properties of transition metal dichalcogenides
topic Materials Science
Computational Physics
url https://arxiv.org/abs/2505.05891