压电
机电耦合系数
超声波传感器
超声波电动机
微观结构
居里温度
陶瓷
传感器
热稳定性
兴奋剂
压电系数
材料科学
光电子学
热的
化学
谐振器耦合系数
复合材料
联轴节(管道)
压电传感器
声学
PMUT公司
粒度
带宽(计算)
热电性
热膨胀
能量收集
信号(编程语言)
作者
Yu Han,Shangyi Guan,Lixu Xie,Kun Zhang,Tao Yang,Yi Quan,Jie Xing,Chunlong Fei,Zhi Tan,Kyle G. Webber,Jianguo Zhu
出处
期刊:Inorganic Chemistry
[American Chemical Society]
日期:2025-11-10
卷期号:64 (46): 22889-22901
被引量:4
标识
DOI:10.1021/acs.inorgchem.5c04075
摘要
Potassium sodium niobate (KNN) ceramics, characterized by their high Curie temperature (TC), favorable piezoelectric coefficients, and relatively low density, represent an environmentally friendly alternative to lead-based piezoelectrics. The fundamental challenge lies in simultaneous optimization of their piezoelectric performance─particularly piezoelectric coefficient d33 and electromechanical coupling coefficient kp─while preserving both thermal stability and TC. Herein, a targeted doping strategy is proposed to optimize the composition of the KNN-based ceramics. The controlled acceptor doping in the multiphase coexistence system enables the regulation of grain size, and the disturbance of the long-range ordered structure leads to the formation of nanodomains, which further enhance the piezoelectric response. Excellent densification and uniform microstructure contribute to both high TC and enhanced piezoelectric performance while ensuring stability across varying temperatures and frequencies. The optimized composition (x = 0.4) achieves exceptional piezoelectric properties: d33 = 358 pC/N and kp = 56.6%. In addition, it demonstrates a TC of 315 °C and good thermal stability. The optimized KNN-based ultrasonic transducer exhibits a 3.19 MHz center frequency with 60% bandwidth (-6 dB) and achieves high-resolution imaging, demonstrating excellent signal transduction capabilities suitable for mid-to-high frequency ultrasonic devices and energy harvesting applications.
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