极化
材料科学
压电
居里温度
相界
压电系数
陶瓷
磁滞
兴奋剂
复合材料
相(物质)
凝聚态物理
铁电性
光电子学
电介质
铁磁性
物理
有机化学
化学
作者
Muhammad Habib,Xuefan Zhou,Lin Tang,Guoliang Xue,Atta‐ur Rahman,Fazli Akram,Dou Zhang
标识
DOI:10.1002/aelm.202201210
摘要
Abstract In piezoceramics, the Curie temperature ( T C ) and piezoelectric coefficient ( d 33 ) are often inversely proportional, so it is very difficult to optimize high piezoelectricity and T C simultaneously. In addition, the high and temperature‐insensitive piezoelectric strain coefficient ( d 33 * ) with small hysteresis is also a longstanding obstacle in the development of lead‐free ceramics. In this work, a facile approach of donor doping strategy is adopted to replace Ba 2+ with Yb 3+ , Y 3+ , Sm 3+ , and Nd 3+ as a result, a high T C of 450 °C and outstanding d 33 of 422–436 pC N −1 is achieved by a novel magnetic poling method. Thermally‐stable and outstanding piezoelectric strain performance ( d 33 * ≈ 520–550 pm V −1 and Δ S T ≈ 10%) with small strain hysteresis ( H < 20%) results are highly encourageable in lead‐free ceramics. The main factors contributing to high piezoelectricity are the morphotropic phase boundary, suppression of defect charges by donor doping, thermal quenching, mesoscale nanodomain size, and novel poling method. The excellent piezoelectric performance and high T C of this work are superior to those of state‐of‐the‐art piezoceramics. The synergistic approaches of compositional design strategy and novel poling process in this work are highly beneficial for temperature‐insensitive piezoelectric sensor and actuator applications.
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