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High temperature stability of entropy-stabilized oxide (MgCoNiCuZn)0.2O in air.

Authors :
Webb, Matthew
Gerhart, Mike
Baksa, Steven
Gelin, Simon
Ansbro, Avery-Ryan
Meisenheimer, Peter B.
Chiang, Tony
Maria, Jon-Paul
Dabo, Ismaila
Rost, Christina M.
Heron, John T.
Source :
Applied Physics Letters; 4/8/2024, Vol. 124 Issue 15, p1-6, 6p
Publication Year :
2024

Abstract

Entropy-stabilized oxides are single-phase, multicomponent oxides that are stabilized by a large entropy of mixing, ΔS, overcoming a positive enthalpy. Due to the −TΔS term in the Gibbs' free energy, G, it can be hypothesized that entropy-stabilized oxides demonstrate a robust thermal stability. Here, we investigate the high temperature stability (1300–1700 °C) of the prototypical entropy-stabilized rocksalt oxide (MgCoNiCuZn)<subscript>0.2</subscript>O in air. We find that at temperatures >1300 °C, the material gradually loses Cu and Zn with increasing temperature. Cu is lost through a selective melting as a Cu-rich liquid phase is formed. Zn is sublimed from the rocksalt phase at approximately similar temperatures to those corresponding to the Cu loss, significantly below both the melting temperature of ZnO and its solubility limit in a rocksalt phase. The elemental loss progressively reduces the entropy of mixing and results in a multiphase solid upon quenching to room temperature. We posit that the high-temperature solubility of Cu and Zn is correlated providing further evidence for entropic stabilization over general solubility arguments. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00036951
Volume :
124
Issue :
15
Database :
Complementary Index
Journal :
Applied Physics Letters
Publication Type :
Academic Journal
Accession number :
176579116
Full Text :
https://doi.org/10.1063/5.0199076