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Modeling the high-temperature phase coexistence region of mixed transition metal oxides from ab initio calculations

Research areaChemistry and Materials Science and Technology
TitleModeling the high-temperature phase coexistence region of mixed transition metal oxides from ab initio calculations
Publication TypeJournal Article
Publication year2021
AuthorsWallace, SK, van Roekeghem, A, Bochkarev, AS, Carrasco, J, Shapeev, A, Mingo, N
JournalPhys. Rev. Research
Volume3
Pages013139
Abstract

Accurate knowledge of phase coexistence regions, i.e., solubility gaps (SGs), is key to the development of mixed transition metal oxides for various applications, such as thermochemical energy storage, or catalysis. However, predicting a SG from first principles in these materials is particularly challenging due to the complex interplay between several sources of entropy, the large configuration space, and the computational expense of ab initio calculations. We present an approach that yields an accurate prediction of the experimental Hausmannite-spinel SG in the case of (CoxMn1x)3O4. The method uses machine learning to extend an ab initio dataset of hundreds of structures, and it includes many different entropic contributions to the free energy. We demonstrate and quantify the crucial roles of phonon and paramagnetic entropy, and the importance of sampling higher-energy configurations, and correcting for finite-size limitations in the ab initio supercell configurations.

DOI10.1103/PhysRevResearch.3.013139