戚相成, 任鹏荣, 同向前. 铌酸钾钠基电工新型压电陶瓷电致应变及温度稳定性研究进展[J]. 高电压技术, 2023, 49(7): 2831-2840. DOI: 10.13336/j.1003-6520.hve.20230489
引用本文: 戚相成, 任鹏荣, 同向前. 铌酸钾钠基电工新型压电陶瓷电致应变及温度稳定性研究进展[J]. 高电压技术, 2023, 49(7): 2831-2840. DOI: 10.13336/j.1003-6520.hve.20230489
QI Xiangcheng, REN Pengrong, TONG Xiangqian. Research Progress in the Electrostrain and Temperature Stability of Potassium Sodium Niobate-based Electrician Novel Piezoelectric Ceramics[J]. High Voltage Engineering, 2023, 49(7): 2831-2840. DOI: 10.13336/j.1003-6520.hve.20230489
Citation: QI Xiangcheng, REN Pengrong, TONG Xiangqian. Research Progress in the Electrostrain and Temperature Stability of Potassium Sodium Niobate-based Electrician Novel Piezoelectric Ceramics[J]. High Voltage Engineering, 2023, 49(7): 2831-2840. DOI: 10.13336/j.1003-6520.hve.20230489

铌酸钾钠基电工新型压电陶瓷电致应变及温度稳定性研究进展

Research Progress in the Electrostrain and Temperature Stability of Potassium Sodium Niobate-based Electrician Novel Piezoelectric Ceramics

  • 摘要: 钙钛矿无铅纳米功能电介质由于其优异的机电耦合性能成为高电压新技术领域研究热点。与商用铅基压电陶瓷相比,铌酸钾钠基(K0.5Na0.5NbO3,简称KNN)压电陶瓷是一种环境友好型新型电工基材,具有高居里温度、低应变迟滞及低驱动极化场强等优点。但相比于其他无铅钙钛矿功能电介质,KNN压电陶瓷电致应变及其温度稳定性较差限制了KNN基压电陶瓷的工程应用。基于此,首先详述了压电材料的机电耦合原理。然后从正、逆压电效应出发,系统归纳了无铅压电基材在电气工程中的应用现状。同时重点从多参数优化协同改性的观点出发,详细阐述了通过元素掺杂、第二相复合、热处理、新型制备工艺等方法协同改善KNN基陶瓷电致应变及其温度稳定性改性的研究进展。最后提出了亟待解决的问题及未来发展方向,包括:开发高机电耦合性能及温度稳定性的新型压电材料、探索KNN基陶瓷相结构、畴结构诱导机制、多机制协同改性工艺研发、压电器件抗老化性能研究等,期望对新型压电电介质设计提供参考。

     

    Abstract: Due to the excellent electromechanical coupling properties, perovskite inorganic nano-functional dielectrics have become a research hotspot in the field of new high voltage technologies. Compared with commercial lead-based piezoelectric ceramics, K0.5Na0.5NbO3 (KNN)-based piezoelectric ceramics are environment-friendly modern electrical materials, and exhibit a high Curie temperature, low strain hysteresis and low driving polarization field. However, compared with other lead-free piezoelectric materials, the KNN-based piezoelectric ceramics have disadvantages of low electrostrain and poor temperature instability, limiting their practical application. Thereby, the principle of electromechanical coupling of piezoelectric materials is introduced firstly. Secondly, based on direct and reverse piezoelectric effects, the application status of lead-free piezoelectric substrates in electrical engineering is comprehensively summarized. Furthermore, from the viewpoint of the multi-parameter optimization and synergistic modification, the state-of-the-art and research progress in improving the electrostrain and temperature stability of KNN-based ceramics by elemental doping, compositing with second phase, heat treatment, and new preparation process are described in detail. Finally, the research priorities and the future development directions are proposed, including the development of novel piezoelectric materials with excellent electromechanical coupling performance temperature stability, the exploration of phase structure and domain structure induction mechanism of KNN-based ceramics, the research and development of multi-mechanism synergistic modification process, and the investigation on anti-aging performance of piezoelectric devices. It is expected to provide some references for designing novel piezoelectric dielectrics.

     

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