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Enhanced Piezoelectricity and Thermal Stability of Electrostrain Performance in BiFeO(3)-Based Lead-Free Ceramics

BiFeO(3)–based ceramics possess an advantage over large spontaneous polarization and high Curie temperature, and are thus widely explored in the field of high–temperature lead–free piezoelectrics and actuators. However, poor piezoelectricity/resistivity and thermal stability of electrostrain make th...

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Autores principales: Shi, Hongwei, Li, Kai, Li, Feng, Ma, Jianxing, Tu, Yubing, Long, Mingsheng, Lu, Yilin, Gong, Weiping, Wang, Chunchang, Shan, Lei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10005518/
https://www.ncbi.nlm.nih.gov/pubmed/36903821
http://dx.doi.org/10.3390/nano13050942
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author Shi, Hongwei
Li, Kai
Li, Feng
Ma, Jianxing
Tu, Yubing
Long, Mingsheng
Lu, Yilin
Gong, Weiping
Wang, Chunchang
Shan, Lei
author_facet Shi, Hongwei
Li, Kai
Li, Feng
Ma, Jianxing
Tu, Yubing
Long, Mingsheng
Lu, Yilin
Gong, Weiping
Wang, Chunchang
Shan, Lei
author_sort Shi, Hongwei
collection PubMed
description BiFeO(3)–based ceramics possess an advantage over large spontaneous polarization and high Curie temperature, and are thus widely explored in the field of high–temperature lead–free piezoelectrics and actuators. However, poor piezoelectricity/resistivity and thermal stability of electrostrain make them less competitive. To address this problem, (1 − x) (0.65BiFeO(3)–0.35BaTiO(3))–xLa(0.5)Na(0.5)TiO(3) (BF–BT–xLNT) systems are designed in this work. It is found that piezoelectricity is significantly improved with LNT addition, which is contributed by the phase boundary effect of rhombohedral and pseudocubic phase coexistence. The small–signal and large–signal piezoelectric coefficient (d(33) and [Formula: see text]) peaks at x = 0.02 with 97 pC/N and 303 pm/V, respectively. The relaxor property and resistivity are enhanced as well. This is verified by Rietveld refinement, dielectric/impedance spectroscopy and piezoelectric force microscopy (PFM) technique. Interestingly, a good thermal stability of electrostrain is obtained at x = 0.04 composition with fluctuation η = 31% ([Formula: see text]), in a wide temperature range of 25–180 °C, which is considered as a compromise of negative temperature dependent electrostrain for relaxors and the positive one for ferroelectric matrix. This work provides an implication for designing high–temperature piezoelectrics and stable electrostrain materials.
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spelling pubmed-100055182023-03-11 Enhanced Piezoelectricity and Thermal Stability of Electrostrain Performance in BiFeO(3)-Based Lead-Free Ceramics Shi, Hongwei Li, Kai Li, Feng Ma, Jianxing Tu, Yubing Long, Mingsheng Lu, Yilin Gong, Weiping Wang, Chunchang Shan, Lei Nanomaterials (Basel) Article BiFeO(3)–based ceramics possess an advantage over large spontaneous polarization and high Curie temperature, and are thus widely explored in the field of high–temperature lead–free piezoelectrics and actuators. However, poor piezoelectricity/resistivity and thermal stability of electrostrain make them less competitive. To address this problem, (1 − x) (0.65BiFeO(3)–0.35BaTiO(3))–xLa(0.5)Na(0.5)TiO(3) (BF–BT–xLNT) systems are designed in this work. It is found that piezoelectricity is significantly improved with LNT addition, which is contributed by the phase boundary effect of rhombohedral and pseudocubic phase coexistence. The small–signal and large–signal piezoelectric coefficient (d(33) and [Formula: see text]) peaks at x = 0.02 with 97 pC/N and 303 pm/V, respectively. The relaxor property and resistivity are enhanced as well. This is verified by Rietveld refinement, dielectric/impedance spectroscopy and piezoelectric force microscopy (PFM) technique. Interestingly, a good thermal stability of electrostrain is obtained at x = 0.04 composition with fluctuation η = 31% ([Formula: see text]), in a wide temperature range of 25–180 °C, which is considered as a compromise of negative temperature dependent electrostrain for relaxors and the positive one for ferroelectric matrix. This work provides an implication for designing high–temperature piezoelectrics and stable electrostrain materials. MDPI 2023-03-05 /pmc/articles/PMC10005518/ /pubmed/36903821 http://dx.doi.org/10.3390/nano13050942 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Shi, Hongwei
Li, Kai
Li, Feng
Ma, Jianxing
Tu, Yubing
Long, Mingsheng
Lu, Yilin
Gong, Weiping
Wang, Chunchang
Shan, Lei
Enhanced Piezoelectricity and Thermal Stability of Electrostrain Performance in BiFeO(3)-Based Lead-Free Ceramics
title Enhanced Piezoelectricity and Thermal Stability of Electrostrain Performance in BiFeO(3)-Based Lead-Free Ceramics
title_full Enhanced Piezoelectricity and Thermal Stability of Electrostrain Performance in BiFeO(3)-Based Lead-Free Ceramics
title_fullStr Enhanced Piezoelectricity and Thermal Stability of Electrostrain Performance in BiFeO(3)-Based Lead-Free Ceramics
title_full_unstemmed Enhanced Piezoelectricity and Thermal Stability of Electrostrain Performance in BiFeO(3)-Based Lead-Free Ceramics
title_short Enhanced Piezoelectricity and Thermal Stability of Electrostrain Performance in BiFeO(3)-Based Lead-Free Ceramics
title_sort enhanced piezoelectricity and thermal stability of electrostrain performance in bifeo(3)-based lead-free ceramics
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10005518/
https://www.ncbi.nlm.nih.gov/pubmed/36903821
http://dx.doi.org/10.3390/nano13050942
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