执行机构
材料科学
双层
生物
人工肌肉
软机器人
机器人
纳米技术
自愈水凝胶
计算机科学
膜
人工智能
自然(考古学)
化学
高分子化学
生物化学
考古
历史
作者
Mengmeng Nan,Kangle Guo,Tao Jia,Guangtong Wang,Shaoqin Liu
标识
DOI:10.1021/acsami.3c16500
摘要
Soft robots have great potential applications in manufacturing, disaster rescue, medical treatment, etc. Artificial muscle is one of the most important components of a soft robot. In previous years, hydrogel actuators that can be controllably deformed by the stimuli of external signals have been developed as good candidates for muscle-like materials. In this article, we successfully prepared a chemical fuel-driven self-resettable bilayer hydrogel actuator mimicking natural muscles with the aid of a new negative feedback reaction network. The actuator can temporarily deform upon the addition of H+ (chemical fuel). Subsequently, H+ accelerated the reaction between BrO3– and Fe(CN)64–, which consume H+. It resulted in the spontaneous recovery of the pH as well as the shape of the actuator. Such an actuator exhibits a great similarity with natural muscles in actuation mechanisms and automaticity in the manipulation compared to the widely reported stimuli-responsive hydrogel actuators. This illustrates that fuel-driven self-resettable hydrogel is a promising dynamic material for mimicking the functions of living creatures.
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