Ultrahigh electromechanical response from competing ferroic orders

Author:

Lin BaichenORCID,Ong Khuong PhuongORCID,Yang TiannanORCID,Zeng Qibin,Hui Hui Kim,Ye Zhen,Sim CelineORCID,Yen Zhihao,Yang Ping,Dou Yanxin,Li Xiaolong,Gao Xingyu,Tan Chee Kiang Ivan,Lim Zhi Shiuh,Zeng Shengwei,Luo TianchengORCID,Xu Jinlong,Tong Xin,Li Patrick Wen Feng,Ren Minqin,Zeng Kaiyang,Sun Chengliang,Ramakrishna SeeramORCID,Breese Mark B. H.,Boothroyd Chris,Lee ChengkuoORCID,Singh David J.ORCID,Lam Yeng Ming,Liu HuajunORCID

Abstract

AbstractMaterials with electromechanical coupling are essential for transducers and acoustic devices as reversible converters between mechanical and electrical energy1–6. High electromechanical responses are typically found in materials with strong structural instabilities, conventionally achieved by two strategies—morphotropic phase boundaries7 and nanoscale structural heterogeneity8. Here we demonstrate a different strategy to accomplish ultrahigh electromechanical response by inducing extreme structural instability from competing antiferroelectric and ferroelectric orders. Guided by the phase diagram and theoretical calculations, we designed the coexistence of antiferroelectric orthorhombic and ferroelectric rhombohedral phases in sodium niobate thin films. These films show effective piezoelectric coefficients above 5,000 pm V−1 because of electric-field-induced antiferroelectric–ferroelectric phase transitions. Our results provide a general approach to design and exploit antiferroelectric materials for electromechanical devices.

Publisher

Springer Science and Business Media LLC

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