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A Glance at Processing-Microstructure-Property Relationships for Magnetoelectric Particulate PZT-CFO Composites

In this work, we investigated the processing-microstructure-property relationships for magnetoelectric (ME) particulate composites consisting of hard ferromagnetic CoFe(2)O(4) (CFO) particles dispersed in a Nb-doped PbZr(x)Ti(1-x)O(3) (PZT) soft ferroelectric matrix. Several preparation steps, namel...

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Autores principales: Galizia, Pietro, Baldisserri, Carlo, Mercadelli, Elisa, Capiani, Claudio, Galassi, Carmen, Algueró, Miguel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7321595/
https://www.ncbi.nlm.nih.gov/pubmed/32517198
http://dx.doi.org/10.3390/ma13112592
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author Galizia, Pietro
Baldisserri, Carlo
Mercadelli, Elisa
Capiani, Claudio
Galassi, Carmen
Algueró, Miguel
author_facet Galizia, Pietro
Baldisserri, Carlo
Mercadelli, Elisa
Capiani, Claudio
Galassi, Carmen
Algueró, Miguel
author_sort Galizia, Pietro
collection PubMed
description In this work, we investigated the processing-microstructure-property relationships for magnetoelectric (ME) particulate composites consisting of hard ferromagnetic CoFe(2)O(4) (CFO) particles dispersed in a Nb-doped PbZr(x)Ti(1-x)O(3) (PZT) soft ferroelectric matrix. Several preparation steps, namely PZT powder calcination, PZT-CFO mixture milling and composite sintering were tailored and a range of microstructures was obtained. These included open and closed porosities up to full densification, PZT matrices with decreasing grain size across the submicron range down to the nanoscale and well dispersed CFO particles with bimodal size distributions consisting of submicron and micron sized components with varying weights. All samples could be poled under a fixed DC electric field of 4 kV/mm and the dielectric, piezoelectric and elastic coefficients were obtained and are discussed in relation to the microstructure. Remarkably, materials with nanostructured PZT matrices and open porosity showed piezoelectric charge coefficients comparable with fully dense composites with coarsened microstructure and larger voltage coefficients. Besides, the piezoelectric response of dense materials increased with the size of the CFO particles. This suggests a role of the conductive magnetic inclusions in promoting poling. Magnetoelectric coefficients were obtained and are discussed in relation to densification, piezoelectric matrix microstructure and particle size of the magnetic component. The largest magnetoelectric coefficient α(33) of 1.37 mV cm(−1) Oe(−1) was obtained for submicron sized CFO particles, when closed porosity was reached, even if PZT grain size remained in the nanoscale.
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spelling pubmed-73215952020-06-29 A Glance at Processing-Microstructure-Property Relationships for Magnetoelectric Particulate PZT-CFO Composites Galizia, Pietro Baldisserri, Carlo Mercadelli, Elisa Capiani, Claudio Galassi, Carmen Algueró, Miguel Materials (Basel) Article In this work, we investigated the processing-microstructure-property relationships for magnetoelectric (ME) particulate composites consisting of hard ferromagnetic CoFe(2)O(4) (CFO) particles dispersed in a Nb-doped PbZr(x)Ti(1-x)O(3) (PZT) soft ferroelectric matrix. Several preparation steps, namely PZT powder calcination, PZT-CFO mixture milling and composite sintering were tailored and a range of microstructures was obtained. These included open and closed porosities up to full densification, PZT matrices with decreasing grain size across the submicron range down to the nanoscale and well dispersed CFO particles with bimodal size distributions consisting of submicron and micron sized components with varying weights. All samples could be poled under a fixed DC electric field of 4 kV/mm and the dielectric, piezoelectric and elastic coefficients were obtained and are discussed in relation to the microstructure. Remarkably, materials with nanostructured PZT matrices and open porosity showed piezoelectric charge coefficients comparable with fully dense composites with coarsened microstructure and larger voltage coefficients. Besides, the piezoelectric response of dense materials increased with the size of the CFO particles. This suggests a role of the conductive magnetic inclusions in promoting poling. Magnetoelectric coefficients were obtained and are discussed in relation to densification, piezoelectric matrix microstructure and particle size of the magnetic component. The largest magnetoelectric coefficient α(33) of 1.37 mV cm(−1) Oe(−1) was obtained for submicron sized CFO particles, when closed porosity was reached, even if PZT grain size remained in the nanoscale. MDPI 2020-06-06 /pmc/articles/PMC7321595/ /pubmed/32517198 http://dx.doi.org/10.3390/ma13112592 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
Galizia, Pietro
Baldisserri, Carlo
Mercadelli, Elisa
Capiani, Claudio
Galassi, Carmen
Algueró, Miguel
A Glance at Processing-Microstructure-Property Relationships for Magnetoelectric Particulate PZT-CFO Composites
title A Glance at Processing-Microstructure-Property Relationships for Magnetoelectric Particulate PZT-CFO Composites
title_full A Glance at Processing-Microstructure-Property Relationships for Magnetoelectric Particulate PZT-CFO Composites
title_fullStr A Glance at Processing-Microstructure-Property Relationships for Magnetoelectric Particulate PZT-CFO Composites
title_full_unstemmed A Glance at Processing-Microstructure-Property Relationships for Magnetoelectric Particulate PZT-CFO Composites
title_short A Glance at Processing-Microstructure-Property Relationships for Magnetoelectric Particulate PZT-CFO Composites
title_sort glance at processing-microstructure-property relationships for magnetoelectric particulate pzt-cfo composites
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7321595/
https://www.ncbi.nlm.nih.gov/pubmed/32517198
http://dx.doi.org/10.3390/ma13112592
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