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Optimization of magnetic properties and GMI effect of Thin Co-rich Microwires for GMI Microsensors

Magnetic microwires can present excellent soft magnetic properties and a giant magnetoimpedance effect. In this paper, we present our last results on the effect of postprocessing allowing optimization of the magnetoimpedance effect in Co-rich microwires suitable for magnetic microsensor applications...

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Autores principales: Gonzalez-Legarreta, Lorena, Corte-Leon, Paula, Zhukova, Valentina, Ipatov, Mihail, Blanco, Juan Maria, Gonzalez, Julian, Zhukov, Arcady
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7146292/
https://www.ncbi.nlm.nih.gov/pubmed/32168845
http://dx.doi.org/10.3390/s20061558
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author Gonzalez-Legarreta, Lorena
Corte-Leon, Paula
Zhukova, Valentina
Ipatov, Mihail
Blanco, Juan Maria
Gonzalez, Julian
Zhukov, Arcady
author_facet Gonzalez-Legarreta, Lorena
Corte-Leon, Paula
Zhukova, Valentina
Ipatov, Mihail
Blanco, Juan Maria
Gonzalez, Julian
Zhukov, Arcady
author_sort Gonzalez-Legarreta, Lorena
collection PubMed
description Magnetic microwires can present excellent soft magnetic properties and a giant magnetoimpedance effect. In this paper, we present our last results on the effect of postprocessing allowing optimization of the magnetoimpedance effect in Co-rich microwires suitable for magnetic microsensor applications. Giant magnetoimpedance effect improvement was achieved either by annealing or stress-annealing. Annealed Co-rich presents rectangular hysteresis loops. However, an improvement in magnetoimpedance ratio is observed at fairly high annealing temperatures over a wide frequency range. Application of stress during annealing at moderate values of annealing temperatures and stress allows for a remarkable decrease in coercivity and increase in squareness ratio and further giant magnetoimpedance effect improvement. Stress-annealing, carried out at sufficiently high temperatures and/or stress allowed induction of transverse magnetic anisotropy, as well as magnetoimpedance effect improvement. Enhanced magnetoimpedance ratio values for annealed and stress-annealed samples and frequency dependence of the magnetoimpedance are discussed in terms of the radial distribution of the magnetic anisotropy. Accordingly, we demonstrated that the giant magnetoimpedance effect of Co-rich microwires can be tailored by controlling the magnetic anisotropy of Co-rich microwires, using appropriate thermal treatment.
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spelling pubmed-71462922020-04-15 Optimization of magnetic properties and GMI effect of Thin Co-rich Microwires for GMI Microsensors Gonzalez-Legarreta, Lorena Corte-Leon, Paula Zhukova, Valentina Ipatov, Mihail Blanco, Juan Maria Gonzalez, Julian Zhukov, Arcady Sensors (Basel) Article Magnetic microwires can present excellent soft magnetic properties and a giant magnetoimpedance effect. In this paper, we present our last results on the effect of postprocessing allowing optimization of the magnetoimpedance effect in Co-rich microwires suitable for magnetic microsensor applications. Giant magnetoimpedance effect improvement was achieved either by annealing or stress-annealing. Annealed Co-rich presents rectangular hysteresis loops. However, an improvement in magnetoimpedance ratio is observed at fairly high annealing temperatures over a wide frequency range. Application of stress during annealing at moderate values of annealing temperatures and stress allows for a remarkable decrease in coercivity and increase in squareness ratio and further giant magnetoimpedance effect improvement. Stress-annealing, carried out at sufficiently high temperatures and/or stress allowed induction of transverse magnetic anisotropy, as well as magnetoimpedance effect improvement. Enhanced magnetoimpedance ratio values for annealed and stress-annealed samples and frequency dependence of the magnetoimpedance are discussed in terms of the radial distribution of the magnetic anisotropy. Accordingly, we demonstrated that the giant magnetoimpedance effect of Co-rich microwires can be tailored by controlling the magnetic anisotropy of Co-rich microwires, using appropriate thermal treatment. MDPI 2020-03-11 /pmc/articles/PMC7146292/ /pubmed/32168845 http://dx.doi.org/10.3390/s20061558 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Gonzalez-Legarreta, Lorena
Corte-Leon, Paula
Zhukova, Valentina
Ipatov, Mihail
Blanco, Juan Maria
Gonzalez, Julian
Zhukov, Arcady
Optimization of magnetic properties and GMI effect of Thin Co-rich Microwires for GMI Microsensors
title Optimization of magnetic properties and GMI effect of Thin Co-rich Microwires for GMI Microsensors
title_full Optimization of magnetic properties and GMI effect of Thin Co-rich Microwires for GMI Microsensors
title_fullStr Optimization of magnetic properties and GMI effect of Thin Co-rich Microwires for GMI Microsensors
title_full_unstemmed Optimization of magnetic properties and GMI effect of Thin Co-rich Microwires for GMI Microsensors
title_short Optimization of magnetic properties and GMI effect of Thin Co-rich Microwires for GMI Microsensors
title_sort optimization of magnetic properties and gmi effect of thin co-rich microwires for gmi microsensors
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7146292/
https://www.ncbi.nlm.nih.gov/pubmed/32168845
http://dx.doi.org/10.3390/s20061558
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