Key Laboratory of Advanced Civil Engineering Materials of Ministry of Education, School of Materials Science and Engineering, Tongji University, Shanghai, 201804, China.
Institute for Superconducting and Electronic Materials, Australian Institute of Innovative Materials, University of Wollongong, NSW, 2500, Australia.
Adv Mater. 2018 Feb;30(8). doi: 10.1002/adma.201705171. Epub 2018 Jan 10.
High-performance lead-free piezoelectric materials are in great demand for next-generation electronic devices to meet the requirement of environmentally sustainable society. Here, ultrahigh piezoelectric properties with piezoelectric coefficients (d ≈700 pC N , d * ≈980 pm V ) and planar electromechanical coupling factor (k ≈76%) are achieved in highly textured (K,Na)NbO (KNN)-based ceramics. The excellent piezoelectric properties can be explained by the strong anisotropic feature, optimized engineered domain configuration in the textured ceramics, and facilitated polarization rotation induced by the intermediate phase. In addition, the nanodomain structures with decreased domain wall energy and increased domain wall mobility also contribute to the ultrahigh piezoelectric properties. This work not only demonstrates the tremendous potential of KNN-based ceramics to replace lead-based piezoelectrics but also provides a good strategy to design high-performance piezoelectrics by controlling appropriate phase and crystallographic orientation.
高性能无铅压电材料对于下一代电子设备至关重要,以满足环境可持续发展社会的需求。在此,我们在高度织构化(K,Na)NbO(KNN)基陶瓷中实现了超高的压电性能,压电系数(d ≈700 pC N, d * ≈980 pm V )和平面机电耦合系数(k ≈76%)。优异的压电性能可以通过强各向异性特征、织构陶瓷中优化的工程域结构以及中间相促进的极化旋转来解释。此外,纳米畴结构降低了畴壁能并提高了畴壁迁移率,这也有助于实现超高的压电性能。这项工作不仅展示了 KNN 基陶瓷替代含铅压电材料的巨大潜力,而且还提供了一种通过控制适当的相和晶体取向来设计高性能压电材料的良好策略。