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Enhancing Electromechanical Properties of PZT-Based Piezoelectric Ceramics by High-Temperature Poling for High-Power Applications
2023-03-29
发表期刊ACS APPLIED MATERIALS AND INTERFACES (IF:8.3[JCR-2023],8.7[5-Year])
ISSN1944-8244
EISSN1944-8252
卷号15期号:12页码:15636-15645
发表状态已发表
DOI10.1021/acsami.2c19802
摘要

Defect engineering is a proven method to tune the properties of perovskite oxides. In demanding high-power piezoelectric ceramic applications, acceptor doping is the most effective method to harden ceramics, but it inevitably degrades the ceramics’ electromechanical properties. Herein, a poling method based on acceptor doping, namely, high-temperature poling, is implemented by applying an electric field above the Curie temperature for poling to achieve a balance of the properties of piezoelectric coefficient d33 and mechanical quality factor Qm. After high-temperature poling, the piezoelectric property of 0.6 mol % Mn-doped Pb0.92Sr0.08(Zr0.533Ti0.443Nb0.024)O3 is d33 = 483 pC/N and Qm = 448. Compared with the traditional poling, the piezoelectric coefficient d33 of the high-temperature poling ceramics increased by approximately 40%, and Qm also increased by nearly 18%. Therefore, high d33 and Qm were exhibited by our PZT piezoelectric ceramics. Rayleigh’s law analysis, XRD, and transmission electron microscopy analysis show that, after high-temperature poling, the considerably increased d33 is related to the large increase in the reversible domain wall motion in the intrinsic effect, while the slightly increased Qm is related to the inhibited irreversible domain wall motion in the extrinsic effect. This study reports a method for high-temperature poling and provides insights into the design of high-power piezoelectric ceramics with high d33 and Qm © 2023 American Chemical Society.

关键词Defects Domain walls High resolution transmission electron microscopy High temperature applications Lead compounds Niobium compounds Perovskite Piezoelectricity Strontium compounds Zirconium compounds D 33 Defect dipoles Electromechanical property High d33 and high Qm High power applications High-power piezoelectric ceramics High-temperature poling Highest temperature Property PZT
收录类别EI
语种英语
出版者American Chemical Society
EI入藏号20231213790751
EI主题词Piezoelectric ceramics
EI分类号482.2 Minerals ; 701.1 Electricity: Basic Concepts and Phenomena ; 708.1 Dielectric Materials ; 741.3 Optical Devices and Systems ; 812.1 Ceramics ; 951 Materials Science
原始文献类型Journal article (JA)
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文献类型期刊论文
条目标识符https://kms.shanghaitech.edu.cn/handle/2MSLDSTB/290033
专题物质科学与技术学院
物质科学与技术学院_博士生
通讯作者Liang, Ruihong
作者单位
1.Key Laboratory of Inorganic Functional Materials and Devices, Shanghai Institute of Ceramics, Chinese Academy of Sciences, 1295 Dingxi Road, Shanghai; 200050, China;
2.Laboratory of Science and Technology on Marine Navigation and Control, China State Shipbuilding Corporation, 268 Dingzigu First Road, Tianjin; 300131, China;
3.Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Science, Beijing; 100049, China;
4.State Key Laboratory of High Performance Ceramics and Superfine Microstructure, Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai; 200050, China;
5.School of Physical Science and Technology, ShanghaiTech University, Shanghai; 201210, China;
6.Beijing Keeven Aviation Instrument Co. Ltd., Courtyard 5, Shijun Street, Beijing; 101399, China
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Wang, Wugang,Chen, Zhengran,Zhou, Zhiyong,et al. Enhancing Electromechanical Properties of PZT-Based Piezoelectric Ceramics by High-Temperature Poling for High-Power Applications[J]. ACS APPLIED MATERIALS AND INTERFACES,2023,15(12):15636-15645.
APA Wang, Wugang,Chen, Zhengran,Zhou, Zhiyong,Li, Yaoguo,&Liang, Ruihong.(2023).Enhancing Electromechanical Properties of PZT-Based Piezoelectric Ceramics by High-Temperature Poling for High-Power Applications.ACS APPLIED MATERIALS AND INTERFACES,15(12),15636-15645.
MLA Wang, Wugang,et al."Enhancing Electromechanical Properties of PZT-Based Piezoelectric Ceramics by High-Temperature Poling for High-Power Applications".ACS APPLIED MATERIALS AND INTERFACES 15.12(2023):15636-15645.
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