软物质
计算机科学
机械
物理
工程类
化学工程
胶体
作者
Shuyun Zhuo,Ziguang Zhao,Zhexin Xie,Yufei Hao,Yichao Xu,Tianyi Zhao,Huanjun Li,Elias Knubben,Li Wen,Lei Jiang,Mingjie Liu
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2020-01-31
卷期号:6 (5): eaax1464-eaax1464
被引量:219
标识
DOI:10.1126/sciadv.aax1464
摘要
Many biological organisms can tune their mechanical properties to adapt to environments in multistable modes, but the current synthetic materials, with bistable states, have a limited ability to alter mechanical stiffness. Here, we constructed programmable organohydrogels with multistable mechanical states by an on-demand modular assembly of noneutectic phase transition components inside microrganogel inclusions. The resultant multiphase organohydrogel exhibits precisely controllable thermo-induced stepwise switching (i.e., triple, quadruple, and quintuple switching) mechanics and a self-healing property. The organohydrogel was introduced into the design of soft-matter machines, yielding a soft gripper with adaptive grasping through stiffness matching with various objects under pneumatic-thermal hybrid actuation. Meanwhile, a programmable adhesion of octopus-inspired robotic tentacles on a wide range of surface morphologies was realized. These results demonstrated the applicability of these organohydrogels in lifelike soft robotics in unconstructed and human body environments.
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