Zhuo Shuyun, Zhao Ziguang, Xie Zhexin, Hao Yufei, Xu Yichao, Zhao Tianyi, Li Huanjun, Knubben Elias M, Wen Li, Jiang Lei, Liu Mingjie
Key Laboratory of Bio-Inspired Smart Interfacial Science and Technology of Ministry of Education, School of Chemistry, Beihang University, Beijing 100191, P. R. China.
Beijing Advanced Innovation Center for Biomedical Engineering, Beihang University, Beijing 100191, P. R. China.
Sci Adv. 2020 Jan 31;6(5):eaax1464. doi: 10.1126/sciadv.aax1464. eCollection 2020 Jan.
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.
许多生物有机体能够调整其机械性能,以多稳态模式适应环境,但目前具有双稳态的合成材料改变机械刚度的能力有限。在此,我们通过在微有机凝胶包裹体内部按需模块化组装非共晶相变组件,构建了具有多稳态机械状态的可编程有机水凝胶。所得的多相有机水凝胶表现出精确可控的热诱导逐步切换(即三重、四重和五重切换)力学性能以及自愈特性。这种有机水凝胶被引入到软物质机器的设计中,产生了一种软夹爪,在气动 - 热混合驱动下,通过与各种物体的刚度匹配实现自适应抓取。同时,实现了受章鱼启发的机器人触手在广泛表面形态上的可编程粘附。这些结果证明了这些有机水凝胶在未构建环境和人体环境中逼真的软机器人技术中的适用性。