自愈水凝胶
材料科学
过热(电)
形状记忆合金
纳米技术
软机器人
等温过程
生物医学工程
复合材料
生物系统
计算机科学
人工智能
机器人
高分子化学
热力学
生物
医学
物理
量子力学
作者
Xiaobo Hu,Daixuan Zhang,Sergei S. Sheiko
标识
DOI:10.1002/adma.201707461
摘要
Heating-triggered shape actuation is vital for biomedical applications. The likely overheating and subsequent damage of surrounding tissue, however, severely limit its utilization in vivo. Herein, cooling-triggered shapeshifting is achieved by designing dual-network hydrogels that integrate a permanent network for elastic energy storage and a reversible network of hydrophobic crosslinks for "freezing" temporary shapes when heated. Upon cooling to 10 °C, the hydrophobic interactions weaken and allow recovery of the original shape, and thus programmable shape alterations. Further, multiple temporary shapes can be encoded independently at either different temperatures or different times during the isothermal network formation. The ability of these hydrogels to shapeshift at benign conditions may revolutionize biomedical implants and soft robotics.
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