Affiliation:
1. Fujian Provincial Key Laboratory of Quantum Manipulation and New Energy Materials College of Physics and Energy Fujian Normal University Fuzhou 350117 China
2. Fujian Provincial Collaborative Innovation Center for Advanced High‐Field Superconducting Materials and Engineering Fuzhou 350117 China
3. Institute of Smart Marine and Engineering Fujian Provincial Key Laboratory of Marine Smart Equipment Fujian University of Technology Fuzhou 350118 China
Abstract
AbstractMarangoni actuators that are propelled by surface tension gradients hold significant potential in small‐scale swimming robots. Nevertheless, the release of “fuel” for conventional chemical Marangoni actuators is not easily controllable, and the single swimming function also limits application areas. Constructing controllable Marangoni robots with multifunctions is still a huge challenge. Herein, inspired by water striders, electricity‐driven strategies are proposed for a multifunctional swimming Marangoni robot (MSMR), which is fabricated by super‐aligned carbon nanotube (SACNT) and polyimide (PI) composite. The MSMR consists of a Marangoni actuator and air‐ambient actuators. Owing to the temperature gradient generated by the electrical stimulation on the water surface, the Marangoni actuators can swim controllably with linear, turning, and rotary motions, mimicking the walking motion of water striders. In addition, the Marangoni actuators can also be driven by light. Importantly, the air‐ambient actuators fabricated by SACNT/PI bilayer structures demonstrate the function of grasping objects on the water surface when electrically Joule‐heated, mimicking the predation behavior of water striders. With the synergistic effect of the Marangoni actuator and air‐ambient actuators, the MSMR can navigate mazes with tunnels and grasp objects. This research will provide a new inspiration for smart actuators and swimming robots.
Funder
National Natural Science Foundation of China
Natural Science Foundation of Fujian Province
State Key Laboratory of Low-Dimensional Quantum Physics
Cited by
1 articles.
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