Liquid Superspreading on Surface with Microhexagonal Structure Inspired by Rock‐Climbing Fish

Author:

Tan Wenjun123ORCID,Zhang Chuang12,Wang Ruiqian123,Zhang Yiwei12,Yang Lianchao123,Chen Qin4,Wang Feifei5,Tang Yezhong4,Xi Ning6,Liu Lianqing12ORCID

Affiliation:

1. State Key Laboratory of Robotics Shenyang Institute of Automation Chinese Academy of Sciences Shenyang 110016 China

2. Institutes for Robotics and Intelligent Manufacturing Chinese Academy of Sciences Shenyang 110169 China

3. University of Chinese Academy of Sciences Beijing 100049 China

4. Chengdu Institute of Biology Chinese Academy of Sciences Chengdu 610042 China

5. Department of Electrical and Electronic Engineering The University of Hong Kong Hong Kong 999077 Hong Kong

6. Emerging Technologies Institute Department of Industrial & Manufacturing Systems Engineering University of Hong Kong Hong Kong 999077 China

Abstract

The dynamic spreading mechanism of liquid on a specific surface is vital for understanding interface wetting and antifouling. Whereas, how to control the spreading process and accelerate the spreading speed is a major challenge. The rock‐climbing fish is characterized by its alepidote feature that lives in stream habitats dominated by strong currents. The mucus on its body surface plays a vital role in its adherence and maintenance of antifouling and antibacterial properties. However, the rapid, uniform, and efficient spreading mechanism of mucus on the fish body surface remains largely unknown. Herein, it is revealed that the surface of the rock‐climbing fish is overlaid fully by the microhexagonal texture structure. This hexagonal structure shows a superspreading effect on liquid diffusion, resulting from testing with bionic microfabrication inspired by the rock‐climbing fish. It is demonstrated that the microhexagonal‐textured surface can enhance liquid spreading quickly and evenly on the surface by regulating the moving contact line of the liquid. This kind of superspreading mechanism has great potential applications in the antifouling, electroencephalogram electrode interfaces, flexible skin sensors, and interfacial lubrication of underwater surfaces.

Funder

National Natural Science Foundation of China

State Key Laboratory of Robotics

Publisher

Wiley

Subject

General Medicine

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