挠曲电
材料科学
夹紧
铁电性
极化(电化学)
微电子
电介质
激发极化
压电
光电子学
电场
凝聚态物理
纳米技术
膜
不对称
扫描探针显微镜
作者
Herui Liu,Tingjun Wang,Yichong Chen,Zirui Jia,Yixuan Zhang,Shaoqing Xu,Zhongrui Liu,Tianhao Lu,Wenshuai Zhu,Yuanyuan Cui,Jiawang Hong,Yingtao Zhao,Xueyun Wang
标识
DOI:10.1002/adfm.202523118
摘要
Abstract Flexoelectricity induced by scanning probe offers a promising, voltage‐free mechanical approach for polarization switching in ultrathin ferroelectrics, circumventing issues such as leakage currents and dielectric breakdown. However, achieving mechanically reversible polarization switching by scanning probe remains challenging, primarily limited by the unidirectional tip‐based loading and the clamping effect of the substrate. In this work, a controllable blister‐based mechanical loading method is developed that enables localized out‐of‐plane deformation of suspended ferroelectric CuInP 2 S 6 (CIPS) membranes. Phase‐field simulation reveals that the blister‐induced bulging deformation generates distinguishable flexoelectric fields between the central suspended region and the surrounding supported area. These opposite flexoelectric fields drive polarizations in opposite directions, as confirmed by experimental observations of reversed domains. Furthermore, bidirectional and reversible ferroelectric polarization switching within the suspended membrane is achieved by dynamically tuning the pressure differential. This study presents a novel strategy for domain engineering for ultrathin ferroelectrics, paving the way for voltage‐free control in future electromechanical microelectronic devices.
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