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Enhanced Ferroelectric and Piezoelectric Properties of (1−x)PMN-xPT Ceramics Based on a Partial Oxalate Process

The pyrochlore phase in ferroelectric and piezoelectric materials is the main obstacle device application due to its poor electrical properties. Especially, the pyrochlore phase is frequently observed in the perovskite-based metal-oxide materials including piezoelectric and ferroelectric ceramics, w...

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Autores principales: Kim, Jinhwan, Yoon, Sanghyun, Ji, Jae-Hoon, Ko, Young-Ho, Cho, Kyung-Ho, Lee, Sang-Kwon, Koh, Jung-Hyuk
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6266214/
https://www.ncbi.nlm.nih.gov/pubmed/30424490
http://dx.doi.org/10.3390/ma11112247
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author Kim, Jinhwan
Yoon, Sanghyun
Ji, Jae-Hoon
Ko, Young-Ho
Cho, Kyung-Ho
Lee, Sang-Kwon
Koh, Jung-Hyuk
author_facet Kim, Jinhwan
Yoon, Sanghyun
Ji, Jae-Hoon
Ko, Young-Ho
Cho, Kyung-Ho
Lee, Sang-Kwon
Koh, Jung-Hyuk
author_sort Kim, Jinhwan
collection PubMed
description The pyrochlore phase in ferroelectric and piezoelectric materials is the main obstacle device application due to its poor electrical properties. Especially, the pyrochlore phase is frequently observed in the perovskite-based metal-oxide materials including piezoelectric and ferroelectric ceramics, which are based on solid-state reaction methods for fabrication. To overcome these problems, advanced innovative methods such as partial oxalate process will be investigated. In this method, crystalized magnesium niobite (MN) and lead titanate (PT) powders will be coated with a certain amount of lead oxalate and, then, the calcination process can be carried out to form the PMN-PT without pyrochlore phase. In this study, (1−x)PMN-xPT ceramics near the morphotropic phase boundary (MPB), with compositions of x = 0.25–0.40, have been prepared employing the partial oxalate method at various temperatures. The crystalline, microstructure, and piezoelectric properties of (1−x)PMN-xPT ceramics depending on the sintering temperature were intensively investigated and discussed. By optimizing the sintering temperature and compositions from the PMN-PT ceramics, the maximum value of the piezoelectric charge coefficient (d(33)) of 665pC/N, planar electromechanical coupling factor (k(p)) of 77.8%, dielectric constant (ε(r)) of 3230, and remanent polarization (P(r)) of 31.67 μC/cm(2) were obtained.
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spelling pubmed-62662142018-12-17 Enhanced Ferroelectric and Piezoelectric Properties of (1−x)PMN-xPT Ceramics Based on a Partial Oxalate Process Kim, Jinhwan Yoon, Sanghyun Ji, Jae-Hoon Ko, Young-Ho Cho, Kyung-Ho Lee, Sang-Kwon Koh, Jung-Hyuk Materials (Basel) Article The pyrochlore phase in ferroelectric and piezoelectric materials is the main obstacle device application due to its poor electrical properties. Especially, the pyrochlore phase is frequently observed in the perovskite-based metal-oxide materials including piezoelectric and ferroelectric ceramics, which are based on solid-state reaction methods for fabrication. To overcome these problems, advanced innovative methods such as partial oxalate process will be investigated. In this method, crystalized magnesium niobite (MN) and lead titanate (PT) powders will be coated with a certain amount of lead oxalate and, then, the calcination process can be carried out to form the PMN-PT without pyrochlore phase. In this study, (1−x)PMN-xPT ceramics near the morphotropic phase boundary (MPB), with compositions of x = 0.25–0.40, have been prepared employing the partial oxalate method at various temperatures. The crystalline, microstructure, and piezoelectric properties of (1−x)PMN-xPT ceramics depending on the sintering temperature were intensively investigated and discussed. By optimizing the sintering temperature and compositions from the PMN-PT ceramics, the maximum value of the piezoelectric charge coefficient (d(33)) of 665pC/N, planar electromechanical coupling factor (k(p)) of 77.8%, dielectric constant (ε(r)) of 3230, and remanent polarization (P(r)) of 31.67 μC/cm(2) were obtained. MDPI 2018-11-12 /pmc/articles/PMC6266214/ /pubmed/30424490 http://dx.doi.org/10.3390/ma11112247 Text en © 2018 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
Kim, Jinhwan
Yoon, Sanghyun
Ji, Jae-Hoon
Ko, Young-Ho
Cho, Kyung-Ho
Lee, Sang-Kwon
Koh, Jung-Hyuk
Enhanced Ferroelectric and Piezoelectric Properties of (1−x)PMN-xPT Ceramics Based on a Partial Oxalate Process
title Enhanced Ferroelectric and Piezoelectric Properties of (1−x)PMN-xPT Ceramics Based on a Partial Oxalate Process
title_full Enhanced Ferroelectric and Piezoelectric Properties of (1−x)PMN-xPT Ceramics Based on a Partial Oxalate Process
title_fullStr Enhanced Ferroelectric and Piezoelectric Properties of (1−x)PMN-xPT Ceramics Based on a Partial Oxalate Process
title_full_unstemmed Enhanced Ferroelectric and Piezoelectric Properties of (1−x)PMN-xPT Ceramics Based on a Partial Oxalate Process
title_short Enhanced Ferroelectric and Piezoelectric Properties of (1−x)PMN-xPT Ceramics Based on a Partial Oxalate Process
title_sort enhanced ferroelectric and piezoelectric properties of (1−x)pmn-xpt ceramics based on a partial oxalate process
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6266214/
https://www.ncbi.nlm.nih.gov/pubmed/30424490
http://dx.doi.org/10.3390/ma11112247
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