First-principles calculations of phase transition, elasticity, and thermodynamic properties for TiZr alloy
Bao-Tian Wang, Wei-Dong Li, Ping Zhang

TL;DR
This study uses first-principles density-functional theory to investigate phase transitions, elastic properties, phonon behavior, and thermodynamics of TiZr alloy, aligning well with experimental data and revealing pressure-dependent stability and ductility features.
Contribution
It provides comprehensive first-principles calculations of structural, elastic, phononic, and thermodynamic properties of TiZr alloy, including phase transition sequences and stability analysis.
Findings
Phase transition sequence: α→ω→β consistent with experiments.
Elastic constants indicate mechanical stability of α and ω phases.
β phase is mechanically unstable at zero pressure, stable above 2.19 GPa.
Abstract
tructural transformation, pressure dependent elasticity behaviors, phonon, and thermodynamic properties of the equiatomic TiZr alloy are investigated by using first-principles density-functional theory. Our calculated lattice parameters and equation of state for and phases as well as the phase transition sequence of are consistent well with experiments. Elastic constants of and phases indicate that they are mechanically stable. For cubic phase, however, it is mechanically unstable at zero pressure and the critical pressure for its mechanical stability is predicted to equal to 2.19 GPa. We find that the moduli, elastic sound velocities, and Debye temperature all increase with pressure for three phases of TiZr alloy. The relatively large values illustrate that the TiZr…
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