Ab initio property predictions of quinary solid solutions using small binary cells
The Set of Small Ordered Structures (SSOS) approach is an ab initio technique for modelling random solid solutions in which many small structures are averaged so that their correlation functions match those of a desired composition. SSOS has been shown to be effective in reducing the cost of density...
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Veröffentlicht in: | Computational materials science 2024-04, Vol.238 (C), p.112924, Article 112924 |
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Sprache: | eng |
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Zusammenfassung: | The Set of Small Ordered Structures (SSOS) approach is an ab initio technique for modelling random solid solutions in which many small structures are averaged so that their correlation functions match those of a desired composition. SSOS has been shown to be effective in reducing the cost of density functional theory calculations relative to other well-known techniques such as cluster expansions and special quasirandom structures for modelling solid solutions. In this work, we demonstrate that SSOS’s can be constructed using cells with only a subset of elements while still accurately modelling multi-component systems. Specifically, we show that small binary cells can effectively model two quinary high entropy alloys – NbTaTiHfZr and MoNbTaVW – accurately capturing properties such as formation energy, lattice parameters, elastic constants, and root-mean-square atomic displacements. Overall, this insight is useful for those looking to construct databases of such small structures for predicting the properties of multi-component solid solutions, as it greatly decreases the number of structures that needs to be considered.
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•Properties of two high entropy alloys are modelled using the SSOS approach.•We show small binary cells are sufficient to predict several properties of interest.•NbTaTiHfZr and MoNbTaVW systems are searched for optimal Pugh’s ratio compositions. |
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ISSN: | 0927-0256 1879-0801 |
DOI: | 10.1016/j.commatsci.2024.112924 |