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Tuning the magnetic properties of $mathrmV_2mathrmO_3/mathrmCoFeB$ heterostructures across the $mathrmV_2mathrmO_3$ structural transition

Academic Article
Publication Date:
2021
abstract:
In this work, we investigate the effects of the V2O3 structural phase transition on the magnetic properties of an amorphous magnetic thin film of CoFeB in contact with it. V2O3 thin films are deposited epitaxially on sapphire substrates, reaching bulklike properties after few nm of growth. By means of temperature dependent Kerr effect characterizations, we prove that crossing the V2O3 structural phase transition induces reproducible and reversible changes to CoFeB magnetic properties, especially to its coercive field. By decreasing the oxide layer thickness, its effects on the magnetic layer decreases, while reducing the magnetic layer thickness maximizes it, with a maximum of 330% coercive field variation found between the two V2O3 structural phases. By simply tuning the temperature, this systematic study shows that the engineering of V2O3 structural transition induces large interfacial strain and thus strong magnetic property variations to an amorphous thin film, opening wide possibilities in implementing strain-driven control of the magnetic behavior without strict requirements on epitaxial coherence at the interface.
Iris type:
01.01 Articolo in rivista
Keywords:
elasticity; magnetic coupling; magnetism; functional materials; interfaces; nanoparticles; thin films; magnetic techniques
List of contributors:
Rossi, Giorgio; Vinai, GIOVANNI MARIA; Panaccione, Giancarlo; Torelli, Piero; Orgiani, Pasquale
Authors of the University:
ORGIANI PASQUALE
PANACCIONE GIANCARLO
TORELLI PIERO
VINAI GIOVANNI MARIA
Handle:
https://iris.cnr.it/handle/20.500.14243/420894
Published in:
PHYSICAL REVIEW MATERIALS
Journal
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URL

https://link.aps.org/doi/10.1103/PhysRevMaterials.5.034413
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