Lu Guangrui, Li Yunting, Zhao Rui, Zhao Yan, Zhao Jiaqi, Bai Wangfeng, Zhai Jiwei, Li Peng
School of Materials Science and Engineering, Liaocheng University, Liaocheng 252059, China.
College of Materials and Environmental Engineering, Hangzhou Dianzi University, Hangzhou 310018, China.
Molecules. 2024 Sep 27;29(19):4601. doi: 10.3390/molecules29194601.
Uninterrupted breakthroughs in the room temperature piezoelectric properties of KNN-based piezoceramics have been witnessed over the past two decades; however, poor temperature stability presents a major challenge for KNN-based piezoelectric ceramics in their effort to replace their lead-based counterparts. Herein, to enhance temperature stability in KNN-based ceramics while preserving the high piezoelectric response, multilayer composite ceramics were fabricated using textured thick films with distinct polymorphic phase transition temperatures. The results demonstrated that the composite ceramics exhibited both outstanding piezoelectric performance (d467 ± 16 pC/N; S0.17% at 40 kV/cm) and excellent temperature stability with d and strain variations of 9.1% and 2.9%, respectively, over a broad temperature range of 25-180 °C. This superior piezoelectric temperature stability is attributed to the inter-inhibitive piezoelectric fluctuations between the component layers, the diffused phase transition, and the stable phase structure with a rising temperature, as well as the permanent contribution of crystal orientation to piezoelectric performance over the studied temperature range. This novel strategy, which addresses the piezoelectric and strain temperature sensitivity while maintaining high performance, is well-positioned to advance the commercial application of KNN-based lead-free piezoelectric ceramics.
在过去二十年中,基于KNN的压电陶瓷在室温压电性能方面取得了不间断的突破;然而,较差的温度稳定性对基于KNN的压电陶瓷取代铅基同类产品构成了重大挑战。在此,为了提高基于KNN的陶瓷的温度稳定性同时保持高压电响应,使用具有不同多晶型相变温度的织构厚膜制备了多层复合陶瓷。结果表明,复合陶瓷在25-180°C的宽温度范围内表现出出色的压电性能(d467±16 pC/N;在40 kV/cm下S0.17%)以及优异的温度稳定性,d和应变变化分别为9.1%和2.9%。这种卓越的压电温度稳定性归因于组件层之间的相互抑制压电波动、扩散相变以及随温度升高的稳定相结构,以及在研究温度范围内晶体取向对压电性能的永久贡献。这种新颖的策略在保持高性能的同时解决了压电和应变温度敏感性问题,有望推动基于KNN的无铅压电陶瓷的商业应用。