Phase stability of ternary fcc and bcc Fe-Cr-Ni alloys
Jan S. Wrobel, Duc Nguyen-Manh, Mikhail Yu. Lavrentiev, Marek Muzyk,, and Sergei L. Dudarev

TL;DR
This study combines DFT, CE, and MCE methods to analyze phase stability, magnetic properties, and ordering phenomena in Fe-Cr-Ni alloys, predicting new stable phases and phase transition temperatures.
Contribution
It introduces a comprehensive computational framework for predicting phase stability and magnetic behavior in ternary Fe-Cr-Ni alloys, including new ground state predictions.
Findings
Fcc Fe2CrNi predicted as a stable ground state.
Excellent agreement between MC simulations and experimental formation enthalpies.
Non-linear magnetic moment variation causes deviations from Vegard law.
Abstract
The phase stability of fcc and bcc magnetic binary Fe-Cr, Fe-Ni, Cr-Ni alloys and ternary Fe-Cr-Ni alloys is investigated using a combination of density functional theory (DFT), Cluster Expansion (CE) and Magnetic Cluster Expansion (MCE). Energies, magnetic moments, and volumes of more than 500 alloy structures are evaluated using DFT, and the most stable magnetic configurations are compared with experimental data. Deviations from the Vegard law in fcc Fe-Cr-Ni alloys, associated with non-linear variation of atomic magnetic moments as functions of alloy composition, are observed. Accuracy of the CE model is assessed against the DFT data, where for ternary alloys the cross-validation error is smaller than 12 meV/atom. A set of cluster interaction parameters is defined for each alloy, where it is used for predicting new ordered alloy structures. Fcc Fe2CrNi phase with Cu2NiZn-like…
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