Newly synthesized Zr2(Al0.58Bi0.42)C, Zr2(Al0.2Sn0.8)C, and Zr2(Al0.3Sb0.7)C MAX phases: A first-principles study
M. A. Ali, M. M. Hossain, N. Jahan, S. H. Naqib, A. K. M. A. Islam

TL;DR
This study uses first-principles DFT calculations to analyze the structural, elastic, and electronic properties of newly synthesized Zr2(Al0.58Bi0.42)C, Zr2(Al0.2Sn0.8)C, and Zr2(Al0.3Sb0.7)C MAX phases, comparing results with experimental data and other MAX phases.
Contribution
First-principles DFT analysis of new Bi, Sn, and Sb containing Zr2AlC MAX phases, providing insights into their properties and stability.
Findings
Bi/Sn/Sb substitution affects elastic moduli and anisotropy.
All compounds exhibit metallic electronic structures.
Vickers hardness decreases with Bi/Sn/Sb substitution.
Abstract
The structural, elastic, and electronic properties of newly synthesized Zr2(Al0.58Bi0.42)C, Zr2(Al0.2Sn0.8)C, and Zr2(Al0.3Sb0.7)C MAX nanolaminates have been studied using first-principles density functional theory (DFT) calculations for the first time. Theoretical Vickers hardness has also been estimated for these compounds. All the calculated results are compared with experimental data and also with that of recently discovered Zr2AlC phase, where available. Zr2(Al0.58Bi0.42)C and Zr2(Al0.2Sn0.8)C are the two first Bi and Sn containing MAX compounds. The calculated structural parameters are found to be in good agreement with the experimental data. The single crystal elastic constants Cij and other polycrystalline elastic coefficients have been calculated and the mechanical stabilities of these compounds have been theoretically confirmed. The bulk modulus increases and the shear…
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