Elucidating Individual Magnetic Contributions in Bi‐Magnetic Fe3O4/Mn3O4 Core/Shell Nanoparticles by Polarized Powder Neutron Diffraction

Author:

Golosovsky I. V.1ORCID,Kibalin I. A.2ORCID,Gukasov A.2ORCID,Roca A. G.3ORCID,López‐Ortega A.45ORCID,Estrader M.67ORCID,Vasilakaki M.8,Trohidou K. N.8,Hansen T. C.9,Puente‐Orench I.910,Lelièvre‐Berna E.9,Nogués J.311ORCID

Affiliation:

1. National Research Center “Kurchatov Institute” B. P. Konstantinov Petersburg Nuclear Physics Institute Gatchina 188300 Russia

2. Laboratoire Léon Brillouin CEA‐CNRS CE‐Saclay Gif‐sur‐Yvette 91191 France

3. Catalan Institute of Nanoscience and Nanotechnology (ICN2) CSIC and BIST Campus UAB Bellaterra Barcelona 08193 Spain

4. Departamento de Ciencias Universidad Pública de Navarra Pamplona 31006 Spain

5. Institute for Advanced Materials and Mathematics INAMAT2 Universidad Pública de Navarra Pamplona 31006 Spain

6. Departament de Química Inorgànica i Orgànica carrer Martí i Franqués 1–11 Universitat de Barcelona Barcelona 08028 Spain

7. Institut de Nanociència i Nanotecnologia IN2UB carrer Martí i Franqués 1–11 Universitat de Barcelona Barcelona 08028 Spain

8. Institute of Nanoscience and Nanotechnology NCSR “Demokritos” 153 10 Agia Paraskevi Attiki 15310 Greece

9. Institut Laue Langevin 71 avenue des Martyrs Grenoble 38000 France

10. Instituto de NanoCiencia y Materiales de Aragón Zaragoza 50009 Spain

11. ICREA Barcelona 08010 Spain

Abstract

AbstractHeterogeneous bi‐magnetic nanostructured systems have had a sustained interest during the last decades owing to their unique magnetic properties and the wide range of derived potential applications. However, elucidating the details of their magnetic properties can be rather complex. Here, a comprehensive study of Fe3O4/Mn3O4 core/shell nanoparticles using polarized neutron powder diffraction, which allows disentangling the magnetic contributions of each of the components, is presented. The results show that while at low fields the Fe3O4 and Mn3O4 magnetic moments averaged over the unit cell are antiferromagnetically coupled, at high fields, they orient parallel to each other. This magnetic reorientation of the Mn3O4 shell moments is associated with a gradual evolution with the applied field of the local magnetic susceptibility from anisotropic to isotropic. Additionally, the magnetic coherence length of the Fe3O4 cores shows some unusual field dependence due to the competition between the antiferromagnetic interface interaction and the Zeeman energies. The results demonstrate the great potential of the quantitative analysis of polarized neutron powder diffraction for the study of complex multiphase magnetic materials.

Funder

Russian Foundation for Basic Research

Generalitat de Catalunya

Universidad Pública de Navarra

Ministerio de Ciencia e Innovación

Publisher

Wiley

Subject

General Materials Science,General Chemistry

Cited by 1 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Neutron diffraction: a primer;Zeitschrift für Kristallographie - Crystalline Materials;2024-04-29

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