Ab initio melting curve of molybdenum by the phase coexistence method
C. Cazorla, M. J. Gillan, S. Taioli, D. Alf\`e

TL;DR
This study uses ab initio methods combined with the phase coexistence technique to accurately determine the melting curve of molybdenum across a wide pressure range, aligning well with experimental data at low pressure.
Contribution
It introduces a reference coexistence approach with DFT and empirical models to improve melting curve predictions for molybdenum, addressing previous uncertainties.
Findings
Calculated melting curve agrees with experimental data at ambient pressure.
The liquid's atomic order closely resembles the high-temperature solid phase.
Electronic density of states shows minimal differences between phases.
Abstract
We report ab initio calculations of the melting curve of molybdenum for the pressure range 0-400 GPa. The calculations employ density functional theory (DFT) with the Perdew-Burke-Ernzerhof exchange-correlation functional in the projector augmented wave (PAW) implementation. We present tests showing that these techniques accurately reproduce experimental data on low-temperature b.c.c. Mo, and that PAW agrees closely with results from the full-potential linearized augmented plane-wave implementation. The work attempts to overcome the uncertainties inherent in earlier DFT calculations of the melting curve of Mo, by using the ``reference coexistence'' technique to determine the melting curve. In this technique, an empirical reference model (here, the embedded-atom model) is accurately fitted to DFT molecular dynamics data on the liquid and the high-temperature solid, the melting curve of…
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