TY - JOUR
T1 - Exploring the electronic structure, mechanical stability and optoelectronic responses of arsenic-based M2AsX (M = Nb, Mo and X = C, N) MAX phase ceramics
AU - Ali, Mubashar
AU - Bibi, Zunaira
AU - Fatima, Tehreem
AU - Kanwal, Shamsa
AU - Huang, Houbing
AU - Khatab Abbasi, Bakar Bin
AU - Albaqami, Munirah D.
N1 - Publisher Copyright:
© 2025 Elsevier Inc.
PY - 2025/5
Y1 - 2025/5
N2 - This study utilizes first-principles computations to examine the electronic structure, mechanical stability, and optoelectronic responses of arsenic-based M2AsX (M = Nb, Mo and X = C, N) ceramics. We assessed the stability of these compounds by calculating their formation enthalpies and phonon dispersion curves, which showed that all the compounds we examined are stable and can be synthesized successfully. The robustness of these materials was also analyzed using elastic constants, which further confirmed that the M2AsX phases are stable and not prone to mechanical instability. Furthermore, the ductility or brittleness of the studied M2AsX compounds have been assessed by some other mechanical parameters such as Pughs and Poisson ratio, Cauchy pressure, and anisotropy factors. The acquired band structures and density of states demonstrate the metallic nature of all M2AsX compounds. Additionally, we have explored the several optical attributes M2AsX compounds in order to understand how these compounds interact with incoming electromagnetic radiation. The remarkable features of M2AsX compounds are expected to render them suitable for a range of applications.
AB - This study utilizes first-principles computations to examine the electronic structure, mechanical stability, and optoelectronic responses of arsenic-based M2AsX (M = Nb, Mo and X = C, N) ceramics. We assessed the stability of these compounds by calculating their formation enthalpies and phonon dispersion curves, which showed that all the compounds we examined are stable and can be synthesized successfully. The robustness of these materials was also analyzed using elastic constants, which further confirmed that the M2AsX phases are stable and not prone to mechanical instability. Furthermore, the ductility or brittleness of the studied M2AsX compounds have been assessed by some other mechanical parameters such as Pughs and Poisson ratio, Cauchy pressure, and anisotropy factors. The acquired band structures and density of states demonstrate the metallic nature of all M2AsX compounds. Additionally, we have explored the several optical attributes M2AsX compounds in order to understand how these compounds interact with incoming electromagnetic radiation. The remarkable features of M2AsX compounds are expected to render them suitable for a range of applications.
KW - 211 MAX phases
KW - Ceramics
KW - First-principles calculation
KW - Mechanical characteristics
KW - Optoelectronic properties
KW - Ternary compounds
UR - https://www.scopus.com/pages/publications/85216482614
U2 - 10.1016/j.jmgm.2025.108965
DO - 10.1016/j.jmgm.2025.108965
M3 - Article
C2 - 39893903
AN - SCOPUS:85216482614
SN - 1093-3263
VL - 136
JO - Journal of Molecular Graphics and Modelling
JF - Journal of Molecular Graphics and Modelling
M1 - 108965
ER -