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Cooling rate-dependent microstructure and electrical properties of BCZT ceramics.

Authors :
Zhou, Chuang
Zhang, Qianwei
Cai, Wei
Yang, Ruiru
Chen, Simin
Gao, Rongli
Chen, Gang
Deng, Xiaoling
Wang, Zhenhua
Lei, Xiang
Fu, Chunlin
Sun, Jianchun
Source :
Materials Science in Semiconductor Processing. Nov2022, Vol. 150, pN.PAG-N.PAG. 1p.
Publication Year :
2022

Abstract

Ba 0.85 Ca 0.15 Zr 0.1 Ti 0.9 O 3 (BCZT) ceramics were successfully synthesized by controlling the cooling rate during the sintering, and their microstructure and electrical properties were systematically analyzed. The results indicate that all BCZT ceramics show the coexistence of orthorhombic (O) and tetragonal (T) phases near room temperature. As a result of the interaction of grain size and densification, the remnant polarization, dielectric constant, and piezoelectric constant increase firstly and then decrease with the rise of cooling rate. The piezoelectric responses of BCZT ceramics are improved by optimizing the cooling process. BCZT ceramics prepared by the cooling rate with 4 °C/min have high dielectric constant (ε m = 23879), high remnant polarization (2 P r = 30.26 μC/cm2), and excellent piezoelectric responses (d 33 = 551.1 pC/N and d 33 * = 630 pm/V), which is due to the coexistence of O-T phase, larger grain size, and superior densification. These findings demonstrate that excellent piezoelectric properties for BCZT ceramics can be achieved by optimizing the cooling rate during the sintering process. • The cooling rate during sintering of BCZT ceramics has been optimized. • Enhanced piezoelectric responses were obtained by the optimization of cooling rate (4 °C/min). • Superior piezoelectricity is caused by the coexistence of O and T phase, larger grain size and excellent densification. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
13698001
Volume :
150
Database :
Academic Search Index
Journal :
Materials Science in Semiconductor Processing
Publication Type :
Academic Journal
Accession number :
158404527
Full Text :
https://doi.org/10.1016/j.mssp.2022.106950