铁电性
材料科学
旋转(数学)
偶极子
单晶
电介质
物理
凝聚态物理
光电子学
核磁共振
几何学
数学
量子力学
作者
Guohua Dong,Suzhi Li,Mouteng Yao,Ziyao Zhou,Yongqiang Zhang,Xu Han,Zhenlin Luo,Junxiang Yao,Bin Peng,Zhongqiang Hu,Houbing Huang,Tingting Jia,Jiangyu Li,Wei Ren,Zuo‐Guang Ye,Xiangdong Ding,Jun Sun,Ce‐Wen Nan,Long‐Qing Chen,Ju Li
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2019-10-24
卷期号:366 (6464): 475-479
被引量:455
标识
DOI:10.1126/science.aay7221
摘要
Ferroelectrics are usually inflexible oxides that undergo brittle deformation. We synthesized freestanding single-crystalline ferroelectric barium titanate (BaTiO3) membranes with a damage-free lifting-off process. Our BaTiO3 membranes can undergo a ~180° folding during an in situ bending test, demonstrating a super-elasticity and ultraflexibility. We found that the origin of the super-elasticity was from the dynamic evolution of ferroelectric nanodomains. High stresses modulate the energy landscape markedly and allow the dipoles to rotate continuously between the a and c nanodomains. A continuous transition zone is formed to accommodate the variant strain and avoid high mismatch stress that usually causes fracture. The phenomenon should be possible in other ferroelectrics systems through domain engineering. The ultraflexible epitaxial ferroelectric membranes could enable many applications such as flexible sensors, memories, and electronic skins.
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