Density functional simulations of pressurized Mg-Zn and Al-Zn alloys
Mohammad Alidoust, David Kleiven, and Jaakko Akola

TL;DR
This study uses density functional theory and computational methods to explore the stability and phase transitions of Mg-Zn and Al-Zn alloys under pressure, revealing pressure-induced phase changes and mechanical properties.
Contribution
It provides new insights into pressure-dependent phase stability and mechanical behavior of Mg-Zn alloys using a combined computational approach.
Findings
Mg-Zn alloys exhibit pressure-induced phase transitions.
Al-Zn alloys are energetically unfavorable across all conditions.
Zn-rich alloys show higher stiffness and stability.
Abstract
The Mg-Zn and Al-Zn binary alloys have been investigated theoretically under static isotropic pressure. The stable phases of these binaries on both initially hexagonal-close-packed (HCP) and face-centered-cubic (FCC) lattices have been determined by utilizing an iterative approach that uses a configurational cluster expansion method, Monte Carlo search algorithm, and density functional theory (DFT) calculations. Based on 64-atom models, it is shown that the most stable phases of the Mg-Zn binary alloy under ambient condition are , , , and for the HCP, and and for the FCC lattice, whereas the Al-Zn binary is energetically unfavorable throughout the entire composition range for both the HCP and FCC lattices under all conditions. By applying an isotropic pressure in the HCP lattice, …
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