自愈水凝胶
材料科学
变形
软机器人
刚度
纳米技术
制作
软质材料
变形(气象学)
组织工程
各向异性
复合材料
转印
生物医学工程
执行机构
计算机科学
高分子化学
人工智能
医学
替代医学
物理
病理
量子力学
作者
Xiaohu Zhou,Tianzhen Li,Jiahui Wang,Fan Chen,Dan Zhou,Qi Liu,Baijia Li,Jingyue Cheng,Xuechang Zhou,Bo Zheng
标识
DOI:10.1021/acsami.8b01610
摘要
Stimuli-responsive hydrogels that undergo programmable shape deformation are of great importance for a wide variety of applications spanning from soft robotics and biomedical devices to tissue engineering and drug delivery. To guide shape morphing, anisotropic elements need to be encoded into the hydrogels during fabrication, which are extremely difficult to alter afterward. This study reports a simple and reliable mechanochemical regulation strategy to postengineer the hydrogels by encoding structures of high stiffness locally into prestretched tough hydrogels through ion transfer printing with a paper-cut. During printing, trivalent ions (Fe3+) were patterned and diffused into the prestretched tough gels, which dramatically increased the local stiffness by forming the second trivalent ionically cross-linked network. By removing the applied stretching force, the stiff anisotropy-encoded prestretched tough hydrogels underwent programmable shape morphing into complex three-dimensional origami structures due to the stiffness mismatch.
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