电容
相变
材料科学
相(物质)
化学
凝聚态物理
物理
有机化学
物理化学
电极
作者
Tengfei Hu,Zhengqian Fu,Xiaowei Liu,Linhai Li,Chenhong Xu,Yiming Zhou,Fei Cao,Jiake Xia,Xuefeng Chen,Genshui Wang,Fangfang Xu
标识
DOI:10.1038/s41467-024-53661-z
摘要
The antiferroelectric-ferroelectric phase transition is a basic principle that holds promise for antiferroelectric ceramics in high capacitance density nonlinear capacitors. So far, the property optimization based on antiferroelectric-ferroelectric transition is solely undertaken by chemical composition tailoring. Alternately, here we propose a phase transition engineering tactic by applying pulsed electric stimulus near the critical electric field, which finally results in ~54.3% enhancement and quick stabilization of capacitance density in Pb0.97La0.02(Zr0.35Sn0.55Ti0.10)O3 antiferroelectric ceramics. Ex-situ and in-situ structural characterizations show that electric stimuli can induce the charming successive structural evolution, including domain evolution from multidomain to monodomain state, and modulation period change from 7.49 to 7.73. Structure-property correlation indicates that the antiferroelectric-ferroelectric phase transition engineering mainly stems from the unexpected irreversible recovery of the modulated structures. The present findings would deepen the understanding of the structural phase transition and provoke composition-independent post-treatment property innovation in the incommensurate antiferroelectric materials and devices. The authors utilize the pulsed electric stimulus near the critical electric field to perform the antiferroelectric-ferroelectric phase transition engineering, realizing enhancement and quick stabilization of capacitance in antiferroelectrics.
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