执行机构
材料科学
叠加原理
变形(气象学)
人工肌肉
弯曲
悬臂梁
软机器人
纳米技术
模数
聚合物
复合数
联轴节(管道)
复合材料
工作(物理)
机械工程
吸收(声学)
图层(电子)
光纤
微电子机械系统
仿生学
抗弯刚度
智能材料
光电子学
透射率
纳米纤维
软质材料
光力学
粘弹性
补偿(心理学)
作者
Linshan Wu,Jianhua Liu,Huanxiong Xia,Pu Liu,Runxia Zhang,Xuchen Hua,Wang Zhang
标识
DOI:10.1002/adfm.202529003
摘要
ABSTRACT The development of soft actuators capable of large, reversible deformation under multiple stimuli is crucial for next‐generation intelligent and bioinspired systems. However, most reported multistimulus actuators rely on the simple superposition of independent driving mechanisms, lacking true coupling or synergy. Here, we report a biomimetic “two‐way traffic” MXene–polymer actuator that achieves bidirectional, ultra‐wide deformation through a synergistic light–moisture feedback mechanism. Inspired by the brick–mortar structure of nacre, a tannic acid (TA)/polyvinyl alcohol (PVA)/carbon nanofiber (CNF)/MXene composite film is fabricated and combined with a PTFE layer to construct a TPCM actuator with tunable mechanical strength (tensile strength up to 132.05 MPa, modulus 121.31 MPa). Under alternating light and humidity stimulation, photothermal heating and moisture absorption cooperatively modulate hydrogen bonding and polymer chain mobility, generating a positive feedback loop that amplifies actuation. The actuator exhibits bidirectional bending angles up to 261° (light) and 273° (humidity)—significantly exceeding deformation limits of single‐stimulus systems. Leveraging this mechanism, bionic crawling robots, claw‐like grippers, and water‐lily‐inspired structures are realized, and a soft optical shutters model is demonstrated. This work introduces a new paradigm for synergistically coupled multi‐stimuli actuators, offering a general strategy for designing adaptive, high‐performance MXene‐based soft robotic systems.
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