Please use this identifier to cite or link to this item: http://hdl.handle.net/2445/191902
Title: Dependence of Exchange Bias on Interparticle Interactions in Co/CoO Core/Shell Nanostructures
Author: Goswami, Suchandra
Gupta, Pushpendra
Nayak, Sagarika
Bedanta, Subhankar
Iglesias, Òscar
Chakraborty, Manashi
De, Debajyoti
Keywords: Materials nanoestructurats
Nanoestructures
Anisotropia
Nanostructured materials
Nanostructures
Anisotropy
Issue Date: 12-Sep-2022
Publisher: MDPI
Abstract: This article reports the dependence of exchange bias (EB) effect on interparticle interactions in nanocrystalline Co/CoO core/shell structures, synthesized using the conventional sol-gel technique. Analysis via powder X-Ray diffraction (PXRD) studies and transmission electron microscope (TEM) images confirm the presence of crystalline phases of core/shell Co/CoO with average particle size ≈ 18 nm. Volume fraction (φ) is varied (from 20% to 1%) by the introduction of a stoichiometric amount of non-magnetic amorphous silica matrix (SiO2) which leads to a change in interparticle interaction (separation). The influence of exchange and dipolar interactions on the EB effect, caused by the variation in interparticle interaction (separation) is studied for a series of Co/CoO core/shell nanoparticle systems. Studies of thermal variation of magnetization (M−T) and magnetic hysteresis loops (M−H) for the series point towards strong dependence of magnetic properties on dipolar interaction in concentrated assemblies whereas individual nanoparticle response is dominant in isolated nanoparticle systems. The analysis of the EB effect reveals a monotonic increase of coercivity (HC) and EB field (HE) with increasing volume fraction. When the nanoparticles are close enough and the interparticle interaction is significant, collective behavior leads to an increase in the effective antiferromagnetic (AFM) CoO shell thickness which results in high HC and HE. Moreover, in concentrated assemblies, the dipolar field superposes to the local exchange field and enhances the EB effect contributing as an additional source of unidirectional anisotropy.
Note: Reproducció del document publicat a: https://doi.org/10.1016/j.jmmm.2021.168594
It is part of: Nanomaterials, 2022, vol. 12, num. 18, p. 3159
URI: http://hdl.handle.net/2445/191902
Related resource: https://doi.org/10.1016/j.jmmm.2021.168594
ISSN: 2079-4991
Appears in Collections:Articles publicats en revistes (Física de la Matèria Condensada)

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