arXiv · 2503.07865
Thermodynamics-Inspired High-Entropy Oxide Synthesis
Abstract
High-entropy oxide (HEO) thermodynamics transcend temperature-centric approaches, spanning a multidimensional landscape where oxygen chemical potential plays a decisive role. Here, we experimentally demonstrate how controlling the oxygen chemical potential coerces multivalent cations into divalent states in rock salt HEOs. We construct a preferred valence phase diagram based on thermodynamic stability and equilibrium analysis, alongside a high throughput enthalpic stability map derived from atomistic calculations leveraging machine learning interatomic potentials. We identify and synthesize seven equimolar single-phase rock salt compositions that accommodate multivalent Mn, Fe, or both, as confirmed by X-ray diffraction and fluorescence. X-ray absorption fine structure spectra reveal predominantly divalent cations. Ultimately, we introduce oxygen chemical potential overlap as a key complementary descriptor predicting HEO stability and synthesizability. Although we focus on rock salt HEOs, our methods are chemically and structurally agnostic, providing a broadly adaptable framework for navigating HEOs thermodynamics and enabling a broader compositional range with contemporary property interest.
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Saeed S. I. Almishal, Matthew Furst, Yueze Tan, Jacob T. Sivak, Gerald Bejger, Dhiya Srikanth, Joseph Petruska, Christina M. Rost, Susan B. Sinnott, Long-Qing Chen, Jon-Paul Maria. 2025-03-10. Thermodynamics-Inspired High-Entropy Oxide Synthesis. https://doi.org/10.1038/s41467-025-63567-z
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