变形
材料科学
软机器人
拓扑(电路)
拓扑缺陷
弹性体
形状记忆合金
辅助
液晶
纳米技术
仿生材料
旋转(数学)
计算机科学
人工智能
光电子学
复合材料
机器人
物理
组合数学
量子力学
数学
作者
Juan Chen,Jinghua Jiang,Jada Weber,Vianney Gimenez‐Pinto,Chenhui Peng
标识
DOI:10.1021/acsami.2c20295
摘要
Programming shape changes in soft materials requires precise control of the directionality and magnitude of their mechanical response. Among ordered soft materials, liquid crystal elastomers (LCEs) exhibit remarkable and programmable shape shifting when their molecular order changes. In this work, we synthesized, remotely programmed, and modeled reversible and complex morphing in monolithic LCE kirigami encoded with predesigned topological patterns in its microstructure. We obtained a rich variety of out-of-plane shape transformations, including auxetic structures and undulating morphologies, by combining different topological microstructures and kirigami geometries. The spatiotemporal shape-shifting behaviors are well recapitulated by elastodynamics simulations, revealing that the complex shape changes arise from integrating the custom-cut geometry with local director profiles defined by topological defects inscribed in the material. Different functionalities, such as a bioinspired fluttering butterfly, a flower bud, dual-rotation light mills, and dual-mode locomotion, are further realized. Our proposed LCE kirigami with topological patterns opens opportunities for the future development of multifunctional devices for soft robotics, flexible electronics, and biomedicine.
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