Origin of ultrahigh-performance barium titanate-based piezoelectrics: Stannum-induced intrinsic and extrinsic contributions

钛酸钡 压电 材料科学 钛酸酯 化学物理 纳米技术 结晶学 凝聚态物理 化学 物理 陶瓷 复合材料 冶金
作者
Bo Wu,Huijing Zheng,Yutao Wu,Zhicheng Huang,Hao‐Cheng Thong,Tao Hong,Wei Wang,Chunlin Zhao,Ze Xu,Yixuan Liu,Zhipeng Xing,Naixin Liang,Fang‐Zhou Yao,Chaofeng Wu,Ke Wang,Bing Han
出处
期刊:Nature Communications [Springer Nature]
卷期号:15 (1)
标识
DOI:10.1038/s41467-024-52031-z
摘要

Despite the pivotal role of stannum doping in achieving ultrahigh piezoelectric performance in barium titanate-based ceramics, the fundamental mechanisms underlying this enhancement remain elusive. Here, we introduce a single variable nonstoichiometric stannum strategy in lead-free barium titanate-based ceramics with giant piezoelectricity, revealing that stannum doping contributes intrinsically and extrinsically to enhance piezoelectricity. Density functional theory calculations elucidate the intrinsic enhancement of polarization arising from lattice distortion and increased space for titanium-oxygen bonds induced by optimal stannum doping, which is corroborated by Rayleigh analysis. A phase transition from ferroelectric multiphase coexistence to paraelectric phase is observed, alongside a rapid miniaturized and eventually disappeared domains with increasing stannum doping. This evolution in phase structure and domain configuration induces a nearly vanishing polarization anisotropy and low domain wall energy, facilitating easy polarization rotation and domain wall motion, thereby significantly contributing to the extrinsic piezoelectric response. Consequently, the origins of ultrahigh performance can be attributed to the synergistic effect of stannum-induced intrinsic and extrinsic contributions in barium titanate-based ceramics. This study provides fundamental insights into the role of doping elements and offers guidance for the design of high-performance piezoelectrics.
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