自愈水凝胶
纳米技术
材料科学
制作
毛细管作用
表面张力
折叠(DSP实现)
蒸发
3D打印
棱锥(几何)
膜
复合材料
机械工程
化学
几何学
工程类
物理
病理
量子力学
生物化学
高分子化学
热力学
数学
替代医学
医学
作者
Moxiao Li,Qingzhen Yang,Hao Liu,Mushu Qiu,Tian Jian Lu,Feng Xu
出处
期刊:Small
[Wiley]
日期:2016-07-15
卷期号:12 (33): 4492-4500
被引量:40
标识
DOI:10.1002/smll.201601147
摘要
Hydrogels have found broad applications in various engineering and biomedical fields, where the shape and size of hydrogels can profoundly influence their functions. Although numerous methods have been developed to tailor 3D hydrogel structures, it is still challenging to fabricate complex 3D hydrogel constructs. Inspired by the capillary origami phenomenon where surface tension of a droplet on an elastic membrane can induce spontaneous folding of the membrane into 3D structures along with droplet evaporation, a facile strategy is established for the fabrication of complex 3D hydrogel constructs with programmable shapes and sizes by crosslinking hydrogels during the folding process. A mathematical model is further proposed to predict the temporal structure evolution of the folded 3D hydrogel constructs. Using this model, precise control is achieved over the 3D shapes (e.g., pyramid, pentahedron, and cube) and sizes (ranging from hundreds of micrometers to millimeters) through tuning membrane shape, dimensionless parameter of the process (elastocapillary number Ce ), and evaporation time. This work would be favorable to multiple areas, such as flexible electronics, tissue regeneration, and drug delivery.
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