Designer Magnetism in High Entropy Oxides
Alessandro R. Mazza, Elizabeth Skoropata, Yogesh Sharma, Jason Lapano,, Thomas W. Heitmann, Brianna L. Musico, Veerle Keppens, Zheng Gai, John W., Freeland, Timothy R. Charlton, Matthew J. Brahlek, Adriana Moreo, Elbio, Dagotto, Thomas Z. Ward

TL;DR
This paper explores how high entropy oxides with strong local compositional disorder can be engineered to produce highly tunable magnetic behaviors, including quantum criticality and exchange bias, challenging traditional notions of order in magnetic materials.
Contribution
It introduces high entropy oxides as a new platform for designing quantum magnetic materials with controllable emergent behaviors through compositional tuning.
Findings
Demonstrated that disorder can lead to long-range magnetic order.
Showed that compositionally tuned microstates can control magnetic phase transitions.
Identified incipient quantum critical points in designed materials.
Abstract
Disorder can have a dominating influence on correlated and quantum materials leading to novel behaviors which have no clean limit counterparts. In magnetic systems, spin and exchange disorder can provide access to quantum criticality, frustration, and spin dynamics, but broad tunability of these responses and a deeper understanding of strong limit disorder is lacking. In this work, we demonstrate that high entropy oxides present an unexplored route to designing quantum materials in which the presence of strong local compositional disorder hosted on a positionally ordered lattice can be used to generate highly tunable emergent magnetic behavior--from macroscopically ordered states to frustration-driven dynamic spin interactions. Single crystal La(Cr0.2Mn0.2Fe0.2Co0.2Ni0.2)O3 films are used as a structurally uniform model system hosting a magnetic sublattice with massive microstate…
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Taxonomy
TopicsMagnetic and transport properties of perovskites and related materials · High Entropy Alloys Studies · Electronic and Structural Properties of Oxides
