Strain‐driven Switching Between Antiferromagnetic States in Frustrated Antiferromagnet UO2 Probed by Exchange Bias Effect

Author:

Tereshina‐Chitrova Evgenia A.1ORCID,Pourovskii Leonid V.23ORCID,Khmelevskyi Sergii4ORCID,Horak Lukas5ORCID,Bao Zhaohui6,Mackova Anna78ORCID,Malinsky Petr78ORCID,Gouder Thomas9,Caciuffo Roberto910ORCID

Affiliation:

1. Institute of Physics Czech Academy of Sciences Prague 18200 Czech Republic

2. CPHT CNRS École polytechnique Institut Polytechnique de Paris Palaiseau 91120 France

3. Collège de France Université PSL 11 place Marcelin Berthelot Paris 75005 France

4. Vienna Scientific Cluster Research Center Vienna Technical University Wiedner Hauptstrasse 8–10 Vienna 1040 Austria

5. Faculty of Mathematics and Physics Charles University Prague 12116 Czech Republic

6. Malvern Panalytical B.V. Lelyweg 1 7602 EA Almelo Overijssel Netherlands

7. Nuclear Physics Institute CAS Department of Neutron Physics Řež 25068 Czech Republic

8. Department of Physics Faculty of Science J. E. Purkinje University Usti nad Labem 40096 Czech Republic

9. European Commission Joint Research Centre (JRC) Postfach 2340 DE‐76125 Karlsruhe Germany

10. National Institute of Nuclear Physics Genoa Section Genova I‐16146 Italy

Abstract

AbstractFrustrated antiferromagnets offer a captivating platform to study the intricate relationship of magnetic interactions, geometric constraints, and emergent phenomena. By controlling spin orientations, these materials can be tailored for applications in spintronics and quantum information processing. The research focuses on the interplay of magnetic and exchange anisotropy effects in artificial heterostructures based on a canonical frustrated antiferromagnet, UO2. The potential to manipulate the spin directions in this material and switch between distinct antiferromagnetic (AFM) states is investigated using substrate‐induced strain. The phenomenon is probed using exchange bias effects in stoichiometric UO2/Fe3O4 bilayers. By employing many‐body first‐principles calculations magnetic configurations in the UO2 layers are identified. Even a minor tetragonal distortion triggers a transition between AFM states of different symmetries, driven by a robust alteration of single‐ion anisotropy due to the distortion. Consequently, this change influences the arrangement of magnetic moments at the UO2/Fe3O4 interface, affecting the magnitude of exchange bias. The findings showcase how epitaxial strain can effectively manipulate the AFM states in frustrated antiferromagnets by controlling single‐site anisotropy.

Funder

Grantová Agentura České Republiky

European Commission

H2020 European Research Council

Ministerstvo Školství, Mládeže a Tělovýchovy

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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