Short-range order and compositional phase stability in refractory high-entropy alloys via first-principles theory and atomistic modeling: NbMoTa, NbMoTaW, and VNbMoTaW
Abstract
Using an all-electron, first-principles, Landau-type theory, we study the nature of short-range order and compositional phase stability in equiatomic refractory high-entropy alloys, NbMoTa, NbMoTaW, and VNbMoTaW. We also investigate selected binary subsystems to provide insight into the physical mechanisms driving order. Our approach examines the short-range order of the solid solutions directly, infers disorder/order transitions, and also extracts parameters suitable for atomistic modeling of diffusional phase transformations. We find a hierarchy of relationships between the chemical species in these materials which promote ordering tendencies. The most dominant is a relative atomic size difference between the 3 d element, V, and the other 4 d and 5 d elements which drives a B 32 -like order. For systems where V is not present, ordering is dominated by the difference in filling of valence states; pairs of elements that are isoelectronic remain weakly correlated to low temperatures, while pairs with a valence difference present B 2 -like order. Our estimated order-disorder transition temperature in VNbMoTaW is sufficiently high for us to suggest that SRO in this material may be experimentally observable.
- Publication:
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Physical Review Materials
- Pub Date:
- January 2023
- DOI:
- arXiv:
- arXiv:2211.09911
- Bibcode:
- 2023PhRvM...7a3801W
- Keywords:
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- Condensed Matter - Materials Science;
- Physics - Computational Physics
- E-Print:
- 12 pages, 5 figures, 3 tables. v2 contains extension of discussion of linear response theory and inclusion of supplementary material. v3 moves to two-column format and corrects a a typographical error in Table 1