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Improvement of electric field-induced strain and energy storage density properties in lead-free BNKT-based ceramics modified by BFT doping

In this research, the effects of Ba(Fe(0.5)Ta(0.5))O(3) (BFT) additive on the phase evolution, the dielectric, ferroelectric, piezoelectric, electric field-induced strain responses, and energy storage density of the Bi(0.5)(Na(0.80)K(0.20))(0.5)TiO(3)–0.03(Ba(0.70)Sr(0.03))TiO(3) (BNKT–0.03BSrT) cer...

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Autores principales: Jaita, Pharatree, Sanjoom, Ratabongkot, Lertcumfu, Narumon, Rujijanagul, Gobwute
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9063543/
https://www.ncbi.nlm.nih.gov/pubmed/35516998
http://dx.doi.org/10.1039/c9ra00956f
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author Jaita, Pharatree
Sanjoom, Ratabongkot
Lertcumfu, Narumon
Rujijanagul, Gobwute
author_facet Jaita, Pharatree
Sanjoom, Ratabongkot
Lertcumfu, Narumon
Rujijanagul, Gobwute
author_sort Jaita, Pharatree
collection PubMed
description In this research, the effects of Ba(Fe(0.5)Ta(0.5))O(3) (BFT) additive on the phase evolution, the dielectric, ferroelectric, piezoelectric, electric field-induced strain responses, and energy storage density of the Bi(0.5)(Na(0.80)K(0.20))(0.5)TiO(3)–0.03(Ba(0.70)Sr(0.03))TiO(3) (BNKT–0.03BSrT) ceramics have been systematically investigated. The ceramics have been prepared by a solid-state reaction method accompanied by two calcination steps. X-ray diffraction indicates that all ceramics coexist between rhombohedral and tetragonal phases, where the tetragonal phase becomes dominant at higher BFT contents. The addition of BFT also promotes the diffuse phase transition in this system. A significant enhancement of electric field-induced strain response (S(max) = 0.42% and [Image: see text] = 840 pm V(−1)) is noted for the x = 0.01 ceramic. Furthermore, the giant electrostrictive coefficient (Q(33) = 0.0404 m(4) C(−2)) with a giant normalized electrostrictive coefficient (Q(33)/E = 8.08 × 10(−9) m(5) C(−2) V(−1)) are also observed for this composition (x = 0.01). In addition, the x = 0.03 ceramic shows good energy storage properties, i.e. it has a high energy storage density (W = 0.65 J cm(−3) @ 120 °C) with very high normalized storage energy density (W/E = 0.13 μC mm(−2)), and good energy storage efficiency (η = 90.4% @ 120 °C). Overall, these results indicate that these ceramics are one of the promising candidate piezoelectric materials for further development for actuator and high electric power pulse energy storage applications.
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spelling pubmed-90635432022-05-04 Improvement of electric field-induced strain and energy storage density properties in lead-free BNKT-based ceramics modified by BFT doping Jaita, Pharatree Sanjoom, Ratabongkot Lertcumfu, Narumon Rujijanagul, Gobwute RSC Adv Chemistry In this research, the effects of Ba(Fe(0.5)Ta(0.5))O(3) (BFT) additive on the phase evolution, the dielectric, ferroelectric, piezoelectric, electric field-induced strain responses, and energy storage density of the Bi(0.5)(Na(0.80)K(0.20))(0.5)TiO(3)–0.03(Ba(0.70)Sr(0.03))TiO(3) (BNKT–0.03BSrT) ceramics have been systematically investigated. The ceramics have been prepared by a solid-state reaction method accompanied by two calcination steps. X-ray diffraction indicates that all ceramics coexist between rhombohedral and tetragonal phases, where the tetragonal phase becomes dominant at higher BFT contents. The addition of BFT also promotes the diffuse phase transition in this system. A significant enhancement of electric field-induced strain response (S(max) = 0.42% and [Image: see text] = 840 pm V(−1)) is noted for the x = 0.01 ceramic. Furthermore, the giant electrostrictive coefficient (Q(33) = 0.0404 m(4) C(−2)) with a giant normalized electrostrictive coefficient (Q(33)/E = 8.08 × 10(−9) m(5) C(−2) V(−1)) are also observed for this composition (x = 0.01). In addition, the x = 0.03 ceramic shows good energy storage properties, i.e. it has a high energy storage density (W = 0.65 J cm(−3) @ 120 °C) with very high normalized storage energy density (W/E = 0.13 μC mm(−2)), and good energy storage efficiency (η = 90.4% @ 120 °C). Overall, these results indicate that these ceramics are one of the promising candidate piezoelectric materials for further development for actuator and high electric power pulse energy storage applications. The Royal Society of Chemistry 2019-04-16 /pmc/articles/PMC9063543/ /pubmed/35516998 http://dx.doi.org/10.1039/c9ra00956f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Jaita, Pharatree
Sanjoom, Ratabongkot
Lertcumfu, Narumon
Rujijanagul, Gobwute
Improvement of electric field-induced strain and energy storage density properties in lead-free BNKT-based ceramics modified by BFT doping
title Improvement of electric field-induced strain and energy storage density properties in lead-free BNKT-based ceramics modified by BFT doping
title_full Improvement of electric field-induced strain and energy storage density properties in lead-free BNKT-based ceramics modified by BFT doping
title_fullStr Improvement of electric field-induced strain and energy storage density properties in lead-free BNKT-based ceramics modified by BFT doping
title_full_unstemmed Improvement of electric field-induced strain and energy storage density properties in lead-free BNKT-based ceramics modified by BFT doping
title_short Improvement of electric field-induced strain and energy storage density properties in lead-free BNKT-based ceramics modified by BFT doping
title_sort improvement of electric field-induced strain and energy storage density properties in lead-free bnkt-based ceramics modified by bft doping
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9063543/
https://www.ncbi.nlm.nih.gov/pubmed/35516998
http://dx.doi.org/10.1039/c9ra00956f
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AT lertcumfunarumon improvementofelectricfieldinducedstrainandenergystoragedensitypropertiesinleadfreebnktbasedceramicsmodifiedbybftdoping
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