Hu Hao, Huang Chao, Galluzzi Massimiliano, Ye Qiang, Xiao Rui, Yu Xuefeng, Du Xuemin
Institute of Biomedical & Health Engineering, Shenzhen Institute of Advanced Technology (SIAT), Chinese Academy of Sciences (CAS), Shenzhen 518035, China.
Key Laboratory of Polymeric Materials and Application Technology of Hunan Province, Key Laboratory of Environmentally Friendly Chemistry and Applications of Ministry of Education, School of Chemistry, Xiangtan University, Xiangtan 411105, China.
Research (Wash D C). 2021 Jun 2;2021:9786128. doi: 10.34133/2021/9786128. eCollection 2021.
Shape-morphing hydrogels can be widely used to develop artificial muscles, reconfigurable biodevices, and soft robotics. However, conventional approaches for developing shape-morphing hydrogels highly rely on composite materials or complex manufacturing techniques, which limit their practical applications. Herein, we develop an unprecedented strategy to edit the shape morphing of monocomponent natural polysaccharide hydrogel films via integrating gradient cross-linking density and geometry effect. Owing to the synergistic effect, the shape morphing of chitosan (CS) hydrogel films with gradient cross-linking density can be facilely edited by changing their geometries (length-to-width ratios or thicknesses). Therefore, helix, short-side rolling, and long-side rolling can be easily customized. Furthermore, various complex artificial 3D deformations such as artificial claw, horn, and flower can also be obtained by combining various flat CS hydrogel films with different geometries into one system, which can further demonstrate various shape transformations as triggered by pH. This work offers a simple strategy to construct a monocomponent hydrogel with geometry-directing programmable deformations, which provides universal insights into the design of shape-morphing polymers and will promote their applications in biodevices and soft robotics.
形状变形水凝胶可广泛用于开发人造肌肉、可重构生物器件和软体机器人。然而,传统的开发形状变形水凝胶的方法高度依赖复合材料或复杂的制造技术,这限制了它们的实际应用。在此,我们开发了一种前所未有的策略,通过整合梯度交联密度和几何效应来编辑单组分天然多糖水凝胶薄膜的形状变形。由于协同效应,具有梯度交联密度的壳聚糖(CS)水凝胶薄膜的形状变形可以通过改变其几何形状(长宽比或厚度)来轻松编辑。因此,可以轻松定制螺旋、短边卷曲和长边卷曲。此外,通过将具有不同几何形状的各种扁平CS水凝胶薄膜组合成一个系统,还可以获得各种复杂的人工3D变形,如人工爪子、角和花朵,这可以进一步展示由pH触发的各种形状转变。这项工作提供了一种构建具有几何导向可编程变形的单组分水凝胶的简单策略,为形状变形聚合物的设计提供了普遍的见解,并将促进它们在生物器件和软体机器人中的应用。