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Updated: Sep 29, 2026

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Grain Engineering Modification of Temperature-Insensitive High Piezoelectricity in Bi0.5Na0.5TiO3-Based Ceramics at
Huihui Liu1,2, Yiping Wang1, Jun Chen1,2
1State Key Laboratory of Mechanics and Control for Aerospace Structures, College of Aerospace Engineering, Nanjing University of Aeronautics and Astronautics, Nanjing210016, China.
Abstract:
The practical application of lead-free Bi0.5Na0.5TiO3 (BNT)-based piezoelectric ceramics is limited by the persistent trade-off between piezoelectric coefficient (d33) and thermal stability, which conventional compositional strategies fail to resolve. Here, we propose a grain engineering approach to decouple this property conflict by directly designing the microstructure of BNT-based ceramics at the morphotropic phase boundary. Rather than relying on complex chemical modifications, grain morphology is modulated to regulate the ferroelectric-to-relaxor transition. The optimized ceramic exhibits a d33 of ∼180 pC/N, a coercive field Ec of 23.6 kV/cm, a remnant polarization Pr of 34.5 μC/cm2, and a depolarization temperature (Td) of 125 °C, while maintaining less than 2% variation in d33 from 30 to 110 °C. This temperature-insensitive d33 originates from grain-engineered multiphase coexistence, which maintains a high piezoelectric response while stabilizing the field-induced long-range ferroelectric order against thermal depolarization. These findings highlight grain engineering as a robust microstructural strategy for developing high-performance, temperature-stable lead-free piezoceramics, paving the way for their use in high-precision devices under fluctuating thermal environments.
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