软机器人
软物质
模块化设计
双稳态
计算机科学
刚度
神经形态工程学
机器人学
人工肌肉
材料科学
机器人
机械工程
生物系统
纳米技术
人工智能
人工神经网络
结构工程
执行机构
工程类
化学工程
操作系统
光电子学
生物
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 (AAAS)]
日期:2020-01-31
卷期号:6 (5)
被引量:145
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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