TY - JOUR
T1 - Unveiling the electrical performance of flash-sintered potassium sodium niobate
AU - Tkach, Alexander
AU - Serrazina, Ricardo
AU - Pereira, Luís
AU - Senos, Ana M. O. R.
AU - Vilarinho, Paula M.
N1 - info:eu-repo/grantAgreement/FCT/Concurso de avaliação no âmbito do Programa Plurianual de Financiamento de Unidades de I&D (2017%2F2018) - Financiamento Base/UIDB%2F50011%2F2020/PT#
info:eu-repo/grantAgreement/FCT/Concurso de avaliação no âmbito do Programa Plurianual de Financiamento de Unidades de I&D (2017%2F2018) - Financiamento Programático/UIDP%2F50011%2F2020/PT#
info:eu-repo/grantAgreement/FCT/Concurso para Atribuição do Estatuto e Financiamento de Laboratórios Associados (LA)/LA%2FP%2F0006%2F2020/PT#
info:eu-repo/grantAgreement/FCT/CEEC IND4ed/2021.02284.CEECIND%2FCP1659%2FCT0018/PT#
Publisher Copyright:
© 2024 The Royal Society of Chemistry.
This work was also financed by Portugal 2020 through the European Regional Development Fund (ERDF), under the Operational Competitiveness and Internationalization Programme (POCI), as part of the project “FLASH sintering of lead free functional oxides towards sustainable processing of materials for energy and related applications - FLASH”, POCI-01-0247-FEDER-029078. FCT is acknowledged for the financial support by Ricardo Serrazina (SFRH/PD/BD/128411/2017).
PY - 2024/10
Y1 - 2024/10
N2 - In the context of sensor, actuator, and energy harvesting applications, lead-free ferroelectric K0.5Na0.5NbO3 (KNN) ceramics offer several advantages, including a high transition temperature and an elevated piezoelectric coefficient. However, producing single-phase KNN ceramics at a low thermal budget requires alternative sintering processes such as electric-field- and current-assisted flash sintering. Furthermore, the electrical properties of flash-sintered ferroelectrics are rarely disclosed. Here, based on systematic dielectric and ferroelectric, impedance spectroscopy and DC conductivity measurements, we demonstrate that the electrical performance of flash-sintered KNN is quite dependent on its thermal history, in contrast to the conventionally sintered one. Simultaneously, we demonstrate the successful production of high-performance KNN ceramics with high polarization, dielectric permittivity, Curie temperature, and piezoelectric coefficient using flash sintering, coupled with a carefully chosen post-sintering electrode curing step. Supported by impedance spectroscopy results, indicative of enhanced oxygen vacancy content in flash-sintered KNN, we postulate that post-sintering heat treatment and low-thermal-budget flash sintering are equally critical for KNN applications, complementing the benefits of reducing lattice defects and enhancing electroceramic performance. Our results demonstrate a pathway towards alternative sintering of electroceramics and offer opportunities to control performance.
AB - In the context of sensor, actuator, and energy harvesting applications, lead-free ferroelectric K0.5Na0.5NbO3 (KNN) ceramics offer several advantages, including a high transition temperature and an elevated piezoelectric coefficient. However, producing single-phase KNN ceramics at a low thermal budget requires alternative sintering processes such as electric-field- and current-assisted flash sintering. Furthermore, the electrical properties of flash-sintered ferroelectrics are rarely disclosed. Here, based on systematic dielectric and ferroelectric, impedance spectroscopy and DC conductivity measurements, we demonstrate that the electrical performance of flash-sintered KNN is quite dependent on its thermal history, in contrast to the conventionally sintered one. Simultaneously, we demonstrate the successful production of high-performance KNN ceramics with high polarization, dielectric permittivity, Curie temperature, and piezoelectric coefficient using flash sintering, coupled with a carefully chosen post-sintering electrode curing step. Supported by impedance spectroscopy results, indicative of enhanced oxygen vacancy content in flash-sintered KNN, we postulate that post-sintering heat treatment and low-thermal-budget flash sintering are equally critical for KNN applications, complementing the benefits of reducing lattice defects and enhancing electroceramic performance. Our results demonstrate a pathway towards alternative sintering of electroceramics and offer opportunities to control performance.
UR - http://www.scopus.com/inward/record.url?scp=85204742036&partnerID=8YFLogxK
U2 - 10.1039/d4tc01702a
DO - 10.1039/d4tc01702a
M3 - Article
AN - SCOPUS:85204742036
SN - 2050-7526
VL - 12
SP - 16958
EP - 16968
JO - Journal of Materials Chemistry C
JF - Journal of Materials Chemistry C
IS - 41
ER -