材料科学
高原(数学)
压电
陶瓷
相(物质)
嵌入
压电系数
分析化学(期刊)
复合材料
计算机科学
色谱法
数学分析
数学
人工智能
有机化学
化学
作者
Hua Yin,Jin Qian,Yuxuan Yang,Siming Wang,Guanglong Ge,Yang Zhang,J. C. Lin,Jinfeng Lin,Haijun Wu,Fei Li,Jiwei Zhai
标识
DOI:10.1002/adfm.202414348
摘要
Abstract To date, the enormous potential of lead‐free piezoceramics in ultrasonic transducers and micro‐actuators has driven extensive research and development. Although the piezoelectric coefficient ( d 33 ) of lead‐free ceramics is improved unprecedentedly, the breakthrough in comprehensive performance is still a key issue, one of which is the inverse relationship between d 33 and Curie temperature ( T C ), and the other is the temperature stability of piezoelectricity. Here, based on the synergistic optimization of the chemical component modulation and texture technology, the high Curie temperature (≈365 °C), high piezoelectric properties ( d 33 ≈331 pC/N, d 33 * ≈561 pm V −1 ) and advanced piezoelectric temperature stability are realized by embedded PNRs in the conceived and prepared lead‐free single phase 0.96((K 0.5 Na 0.5 )(Nb 0.98 Ta 0.02 )O 3 )‐0.01(Bi(Ni 0.67 Nb 0.33 )O 3 )‐0.03(Bi 0.5 K 0.5 )HfO 3 texture ceramics. The d 33 changes by only 2.0% when the temperature is increased from 25 to 100 °C (≈10.0% to 200 °C), while the electrical strain ( d 33 * ) changes by only 4.2% when the temperature is increased from 25 to 175 °C (≈9.8% to 200 °C), which is comparable to the commercial lead‐based materials (i.e., PZT‐4). This work demonstrates significant progress in the comprehensive piezoelectric performance (especially the piezoelectric temperature stability) of lead‐free ceramics and inspires further attempts to achieve high‐temperature piezoelectric properties.
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