材料科学
压电
接受者
硬化(计算)
微观结构
透射电子显微镜
分布(数学)
表征(材料科学)
复合材料
磁畴壁(磁性)
离子键合
离子
兴奋剂
相(物质)
纳米技术
成核
领域(数学分析)
扫描透射电子显微镜
纳米线
压电系数
传输(电信)
融合
光电子学
位错
化学物理
扫描电子显微镜
透射系数
作者
Yongqi Pan,Xinya Feng,Zhourui Zhang,Yi Ding,Fei Li,shujun zhang,Ting Zheng,Jiagang Wu
摘要
Simultaneously optimizing the piezoelectric coefficient (d33) and mechanical quality factor (Qm) presents a fundamental challenge in developing high-performance piezoceramics for high-power applications. While conventional hardening approaches, like acceptor doping, can improve Qm, they typically sacrifice d33-an inherent trade-off that limits material performance. In this study, we propose an innovative strategy utilizing ion-conductive K2Ti6O13 (KT) rod-shaped secondary phase as functional ionic channels to create spatially graded acceptor distribution in potassium sodium niobate (KNN)-based lead-free ceramics. This strategy achieves unprecedented property synergy, yielding simultaneous enhancements of 36% in d33 and 64% in Qm. Through multiscale characterization combining aberration transmission electron microscopy and phase-field simulations, we reveal that the KT-mediated gradient distribution of Cu ions induces localized domain activation in certain regions while enhancing pinning effects in others. This unique microstructure establishes a dynamic balance between domain wall mobility and stabilization, ultimately optimizing the overall piezoelectric response. This ion-channel-assisted heterogeneous doping strategy establishes a new design paradigm for overcoming the traditional d33-Qm compromise, opening avenues for next-generation lead-free piezoelectrics in high-power electromechanical systems.
科研通智能强力驱动
Strongly Powered by AbleSci AI