Achieving giant electrostrain of above 1% in (Bi,Na)TiO3-based lead-free piezoelectrics via introducing oxygen-defect composition

Piezoelectric ceramics have been extensively used in actuators, where the magnitude of electrostrain is key indicator for large-stroke actuation applications. Here, we propose an innovative strategy based on defect chemistry to form a defect-engineered morphotropic phase boundary and achieve a giant...

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Veröffentlicht in:Science advances 2023-02, Vol.9 (5), p.eade7078-eade7078
Hauptverfasser: Luo, Huajie, Liu, Hui, Huang, Houbing, Song, Yu, Tucker, Matthew G, Sun, Zheng, Yao, Yonghao, Gao, Baitao, Ren, Yang, Tang, Mingxue, Qi, He, Deng, Shiqing, Zhang, Shujun, Chen, Jun
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Sprache:eng
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Zusammenfassung:Piezoelectric ceramics have been extensively used in actuators, where the magnitude of electrostrain is key indicator for large-stroke actuation applications. Here, we propose an innovative strategy based on defect chemistry to form a defect-engineered morphotropic phase boundary and achieve a giant strain of 1.12% in lead-free Bi 0.5 Na 0.5 TiO 3 (BNT)–based ceramics. The incorporation of the hypothetical perovskite BaAlO 2.5 with nominal oxygen defect into BNT will form strongly polarized directional defect dipoles, leading to a strong pinning effect after aging. The large asymmetrical strain is mainly attributed to two factors: The defect dipoles along crystallographic [001] direction destroy the long-range ordering of the ferroelectric and activate a reversible phase transition while promoting polarization rotation when the dipoles are aligned along the applied electric field. Our results not only demonstrate the potential application of BNT-based materials in low-frequency, large-stroke actuators but also provide a general methodology to achieve large strain. Giant strain above 1% is achieved via the synergistic contributions from oxygen-defect perovskite and morphotropic phase boundary.
ISSN:2375-2548
DOI:10.1126/sciadv.ade7078