执行机构
材料科学
人工肌肉
溶剂
Lift(数据挖掘)
各向异性
扩散
纳米技术
脂质微区
机制(生物学)
体积热力学
复合材料
膜
计算机科学
化学
热力学
光学
人工智能
数据挖掘
物理
有机化学
量子力学
生物化学
作者
Longhao Zhang,Hao Yan,Jiajia Zhou,Ziguang Zhao,Jin Huang,Lie Chen,Yunfei Ru,Mingjie Liu
标识
DOI:10.1002/adma.202202193
摘要
Abstract Current hydrogel actuators mostly suffer from weak actuation strength and low responsive speed owing to their solvent diffusion‐induced volume change mechanism. Here a skeletal muscle‐inspired organohydrogel actuator is reported in which solvents are confined in hydrophobic microdomains. Organohydrogel actuator is driven by compartmentalized directional network deformation instead of volume change, avoiding the limitations that originate from solvent diffusion. Organohydrogel actuator has an actuation frequency of 0.11 Hz, 110 times that of traditional solvent diffusion‐driven hydrogel actuators (<10 −3 Hz), and can lift more than 85 times their own weight. This design achieves the combination of high responsive speed, high actuation strength, and large material size, proposing a strategy to fabricate hydrogel actuators comparable with skeletal muscle performance.
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