Study of the ideal strengths, electronic and elastic properties of Mo 2 B, Mo 3 B 2 and MoB 2

Stoichiometric ratio and atomic arrangement may influence the physical properties of crystals. In this work, first-principles calculations are performed to study the ideal strengths, electronic and elastic properties of I4/m Mo2B, P4/mbm Mo3B2 and I41/amd MoB2. The dynamical, thermodynamic and mechanical stabilities of these crystals are verified. Calculated electronic properties indicate that all of them exhibit metallic character. Their bonding properties are analysed via multiple approaches. Computed elastic constants reveal that they are mechanically stable but anisotropic. The derived bulk moduli and melting temperatures suggest that they are incompressible and refractory. The stress–strain curves of representative strain patterns are calculated and the corresponding crystal deformation mechanisms are uncovered. The calculated minimum ideal strengths of Mo2B, Mo3B2 and MoB2 are 20.9, 22.9 and 16.9 GPa under the [001](110), [100](011) and [100](011) shear modes, respectively. Studies reveal that different strain modes may bring different influences on the metallicity of the crystals, and applied strains will shift the boundary between the bonding and antibonding states towards higher-energy regions. Their hardness values are also evaluated with several computational schemes. Further experiments are required to resolve the considerable discrepancies among the predicted hardness values.

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Publication Details

Journal
The Philosophical Magazine A Journal of Theoretical Experimental and Applied Physics
Published
2026-09-06
DOI
https://doi.org/10.1080/14786435.2026.2729234
Primary Topic
Boron and Carbon Nanomaterials Research
Type
article
Field-Weighted Citation Impact
0.00

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article

Study of the ideal strengths, electronic and elastic properties of Mo 2 B, Mo 3 B 2 and MoB 2

Zhen‐Long Lv, Kaitong Wang, Xinxin Wang, Shijie Lv et al.
The Philosophical Magazine A Journal of Theoretical Experimental and Applied Physics
Boron and Carbon Nanomaterials Research
article

Study of the ideal strengths, electronic and elastic properties of Mo 2 B, Mo 3 B 2 and MoB 2

Zhen‐Long Lv, Kaitong Wang, Xinxin Wang, Shijie Lv, Shi-Feng Niu
article en

Abstract

Stoichiometric ratio and atomic arrangement may influence the physical properties of crystals. In this work, first-principles calculations are performed to study the ideal strengths, electronic and elastic properties of I4/m Mo2B, P4/mbm Mo3B2 and I41/amd MoB2. The dynamical, thermodynamic and mechanical stabilities of these crystals are verified. Calculated electronic properties indicate that all of them exhibit metallic character. Their bonding properties are analysed via multiple approaches. Computed elastic constants reveal that they are mechanically stable but anisotropic. The derived bulk moduli and melting temperatures suggest that they are incompressible and refractory. The stress–strain curves of representative strain patterns are calculated and the corresponding crystal deformation mechanisms are uncovered. The calculated minimum ideal strengths of Mo2B, Mo3B2 and MoB2 are 20.9, 22.9 and 16.9 GPa under the [001](110), [100](011) and [100](011) shear modes, respectively. Studies reveal that different strain modes may bring different influences on the metallicity of the crystals, and applied strains will shift the boundary between the bonding and antibonding states towards higher-energy regions. Their hardness values are also evaluated with several computational schemes. Further experiments are required to resolve the considerable discrepancies among the predicted hardness values.

The Philosophical Magazine A Journal of Theoretical Experimental and Applied Physics
Henan University of Science and Technology (CN)
Natural Science Foundation of Henan Province
Openalex Percentile: Top 24%
Boron and Carbon Nanomaterials Research
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Study of the ideal strengths, electronic and elastic properties of Mo 2 B, Mo 3 B 2 and MoB 2 — Zhen‐Long Lv, Kaitong Wang, et al. · The Philosophical Magazine A Journal of Theoretical Experimental and Applied Physics (2026) | TGRS Research Map | TGRS