Defect‐Engineering by Solvent Mediated Mild Oxidation as a Tool to Induce Exchange Bias in Metal Doped Ferrites

Author:

Muzzi Beatrice123,Albino Martin3,Petrecca Michele3,Innocenti Claudia23ORCID,de Julián Fernández César4,Bertoni Giovanni5ORCID,Ibarra M. Ricardo678,Christensen Mogens9,Avdeev Maxim1011ORCID,Marquina Clara67,Sangregorio Claudio23ORCID

Affiliation:

1. Department of Biotechnology Chemistry and Pharmacy University of Siena Siena I‐53100 Italy

2. Istituto di Chimica dei Composti Organometallici (ICCOM) Consiglio Nazionale delle Ricerche (CNR) Sesto Fiorentino (FI) I‐50019 Italy

3. Department of Chemistry “U. Schiff” University of Florence and INSTM Sesto Fiorentino, (FI) I‐50019 Italy

4. Istituto dei Materiali per l' Elettronica ed il Magnetismo (IMEM) Consiglio Nazionale delle Ricerche(CNR) Parma I‐43124 Italy

5. CNR – Istituto Nanoscienze Modena I‐41125 Italy

6. Instituto de Nanociencia y Materiales de Aragón (INMA) Consejo Superior de Investigaciones Científicas (CSIC)‐Universidad de Zaragoza Zaragoza 50009 Spain

7. Departamento de Física de la Materia Condensada Universidad de Zaragoza Zaragoza 50009 Spain

8. Laboratorio de Microscopias Avanzadas (LMA) Universidad de Zaragoza Zaragoza 50009 Spain

9. Department of Chemistry and iNANO Aarhus University Langelandsgade 140 Aarhus C DK‐8000 Denmark

10. Australian Nuclear Science and Technology Organisation (ANSTO) New Illawarra Road Lucas Heights NSW 2234 Australia

11. School of Chemistry The University of Sydney Sydney NSW 2006 Australia

Abstract

AbstractThe crystal site occupancy of different divalent ions and the induction of lattice defects represent an additional tool for modifying the intrinsic magnetic properties of spinel ferrites nanoparticles. Here, the relevance of the lattice defects is demonstrated in the appearance of exchange‐bias and in the improvement of the magnetic properties of doped ferrites of 20 nm, obtained from the mild oxidation of core@shell (wüstite@ferrite) nanoparticles. Three types of nanoparticles (Fe0.95O@Fe3O4, Co0.3Fe0.7O@Co0.8Fe2.2O4 and Ni0.17Co0.21Fe0.62O@Ni0.4Co0.3Fe2.3O4) are oxidized. As a result, the core@shell morphology is removed and transformed in a spinel‐like nanoparticle, through a topotactic transformation. This study shows that most of the induced defects in these nanoparticles and their magnetic properties are driven by the inability of the Co(II) ions at the octahedral sites to migrate to tetrahedral sites, at the chosen mild oxidation temperature. In addition, the appearance of crystal defects and antiphase boundaries improves the magnetic properties of the starting compounds and leads to the appearance of exchange bias at room temperature. These results highlight the validity of the proposed method to impose novel magnetic characteristics in the technologically relevant class of nanomaterials such as spinel ferrites, expanding their potential exploitation in several application fields.

Publisher

Wiley

Subject

General Materials Science,General Chemistry

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