Directional Natural Rubber Latex–Polyacrylamide/Graphene–PNIPAM Bi-Hydrogel for Programmable Complex Stimuli-Responsive Actuations

双层 天然橡胶 材料科学 图层(电子) 弯曲 各向异性 自愈水凝胶 人工肌肉 Lift(数据挖掘) 执行机构 复合材料 机械工程 仿生学 同种类的 工作(物理) 极限抗拉强度 折叠(DSP实现) 软机器人 计算机科学 逐层 制作 模数 智能材料 纳米技术
作者
Xueliang Feng,Jie‐Wei Wong,Mingjin Yang,Qing Zhang,Xiaoxue Liao,Daquan Kek,Zhenzhong Liu,Jize Liu,Chunxin Ma,Qingrong Wei,Tuck‐Whye Wong
出处
期刊:ACS applied polymer materials [American Chemical Society]
卷期号:7 (18): 12868-12876
标识
DOI:10.1021/acsapm.5c02849
摘要

Intelligent hydrogels can provide various biomimetic actuations in response to external stimuli, but it is still difficult to program their actuating complexity, which severely limits their further applications. Herein, a stimuli-responsive actuating bi-hydrogel with a directional negative layer and a homogeneous positive layer has been explored. The stretched natural rubber latex–polyacrylamide (NRL-PAAm) hydrogel layer can partly maintain this directional structure, which can further integrate with the photothermal-responsive graphene-poly(N-isopropylacrylamide) (G-PNIPAM) hydrogel layer to obtain the anisotropic bilayer hydrogel. First of all, different from bilayer PNIPAM-based hydrogels, which commonly only achieve two-dimensional (2D) complex actuations, this bi-hydrogel can achieve various not only 2D but also three-dimensional (3D) complex programmable actuations, especially because of its double anisotropy of both bilayer and directional structures. Furthermore, this bi-hydrogel can own a rapid actuating speed reaching 27.7°/s of bending and 18.0°/s of folding in response to non-contact near-infrared (NIR) irradiation, mainly owing to the high photothermal conversion efficiency of composited graphene. Last but not least, thanks to the highly enhanced mechanical performance of the directional NRL-PAAm hydrogel layer, this bi-hydrogel is robust, reaching 4.0 times the tensile strength of pure G-PNIPAM, which owns a relatively powerful force to lift more than 50 times its self-weight. This work provides a promising intelligent hydrogel integrating programmable 2D/3D complex actuation, rapid actuating speed, and powerful force, which will also inspire exploration of other soft intelligent materials.
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