Disorder by Design: Unveiling Local Structure and Functional Insights in High Entropy Oxides

Fuente: arXiv
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Auteurs principaux: Barber, John P., Deary, William J., Titus, Andrew N., Bejger, Gerald R., Almishal, Saeed S. I., Rost, Christina M.
Format: Preprint
Publié: 2025
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author Barber, John P.
Deary, William J.
Titus, Andrew N.
Bejger, Gerald R.
Almishal, Saeed S. I.
Rost, Christina M.
author_facet Barber, John P.
Deary, William J.
Titus, Andrew N.
Bejger, Gerald R.
Almishal, Saeed S. I.
Rost, Christina M.
contents High entropy oxides (HEOs) are a rapidly growing class of compositionally complex ceramics in which configurational disorder is engineered to unlock novel functionality. While average crystallographic symmetry is often retained, local structural and chemical disorder, including cation size and valence mismatch, oxygen sublattice distortions, and site-specific bonding, strongly governs ionic transport, redox behavior, magnetic ordering, and dielectric response. This review outlines how these modes of disorder manifest across key oxide families such as rock salt, spinel, fluorite, and perovskite. We highlight recent advances in spectroscopy, total scattering, and high-resolution microscopy enable multi-scale insight into short- and intermediate-range order. By integrating experimental observations with theoretical modeling of entropy and local energetics, we establish a framework linking structural heterogeneity to emergent properties. These insights not only deepen our fundamental understanding of disorder-property relationships but also offer a path toward rational design of tunable materials for catalysis, energy storage, electronics, and much more.
format Preprint
id arxiv_https___arxiv_org_abs_2506_12888
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Disorder by Design: Unveiling Local Structure and Functional Insights in High Entropy Oxides
Barber, John P.
Deary, William J.
Titus, Andrew N.
Bejger, Gerald R.
Almishal, Saeed S. I.
Rost, Christina M.
Materials Science
High entropy oxides (HEOs) are a rapidly growing class of compositionally complex ceramics in which configurational disorder is engineered to unlock novel functionality. While average crystallographic symmetry is often retained, local structural and chemical disorder, including cation size and valence mismatch, oxygen sublattice distortions, and site-specific bonding, strongly governs ionic transport, redox behavior, magnetic ordering, and dielectric response. This review outlines how these modes of disorder manifest across key oxide families such as rock salt, spinel, fluorite, and perovskite. We highlight recent advances in spectroscopy, total scattering, and high-resolution microscopy enable multi-scale insight into short- and intermediate-range order. By integrating experimental observations with theoretical modeling of entropy and local energetics, we establish a framework linking structural heterogeneity to emergent properties. These insights not only deepen our fundamental understanding of disorder-property relationships but also offer a path toward rational design of tunable materials for catalysis, energy storage, electronics, and much more.
title Disorder by Design: Unveiling Local Structure and Functional Insights in High Entropy Oxides
topic Materials Science
url https://arxiv.org/abs/2506.12888