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Entropy-stabilized oxides

Nature Communications · 2015 · Vol. 6(1) · pp. 8485–8485
Christina M. RostEdward SachetTrent BormanAli MoballeghElizabeth C. DickeyDong HouJacob L. JonesStefano CurtaroloJon‐Paul Maria

Abstract

Configurational disorder can be compositionally engineered into mixed oxide by populating a single sublattice with many distinct cations. The formulations promote novel and entropy-stabilized forms of crystalline matter where metal cations are incorporated in new ways. Here, through rigorous experiments, a simple thermodynamic model, and a five-component oxide formulation, we demonstrate beyond reasonable doubt that entropy predominates the thermodynamic landscape, and drives a reversible solid-state transformation between a multiphase and single-phase state. In the latter, cation distributions are proven to be random and homogeneous. The findings validate the hypothesis that deliberate configurational disorder provides an orthogonal strategy to imagine and discover new phases of crystalline matter and untapped opportunities for property engineering.

Electronic and Structural Properties of OxidesMachine Learning in Materials ScienceQuantum Dots Synthesis And PropertiesConfiguration entropyEntropy (arrow of time)OxideHomogeneousStatistical physicsThermodynamicsMaterials scienceState of matterChemical physicsChemistry

Funding

  • National Science Foundation
  • U.S. Department of Defense
  • U.S. Department of Energy
  • North Carolina State University
  • Multidisciplinary University Research Initiative
  • Office of Naval Research
  • Army Research Office
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