执行机构
爬行
软机器人
仿生学
机器人
可控性
材料科学
适应性
纳米技术
机械工程
工程类
计算机科学
人工智能
电气工程
生态学
解剖
生物
医学
数学
应用数学
作者
Chenchu Zhang,Fating Liu,Jie Zhao,Ying Hu,Yuan Zhu,Fan Li,Shu Li Sheng,Hao Liu,Zhongqiang Xu,Kaiqiang Cao,Dong Wu
出处
期刊:Nano Letters
[American Chemical Society]
日期:2025-07-17
卷期号:25 (30): 11618-11625
标识
DOI:10.1021/acs.nanolett.5c02126
摘要
Light-driven amphibious soft actuators have been a research focus in soft robotics for their superior environmental adaptability and remote controllability. However, achieving amphibious motion in millimeter-scale light-driven soft actuators remains challenging, as designing and fabricating land-water compatible structures is difficult. In this study, we develop femtosecond-laser-fabricated tilted superhydrophobic microstructures to enable amphibious capabilities in soft actuators. Tilted micropillar-integrated superhydrophobic microstructures enhance land friction differentials and induce aquatic Marangoni effects, enabling inchworm-like crawling and water strider-like swimming in soft actuators. Benefited from that, the amphibious mobility of soft actuators has been realized compared to those without micropillars. The crawling speed on land is increased by ∼100%, while the swimming speed on water is increased by ∼60%. Compared with existing amphibious soft actuators, the proposed strategy is simple, nondamaging, and can enhance the motion performance, showing great potential in the amphibious applications of soft robots.
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