Electrocapillarity‐Induced Hurricane‐in‐a‐Tube Enables the Generation and Patterning of Liquid Metal Droplets

Author:

Song Chunlei12ORCID,Tao Xianzan34,Chen Yicheng5,Mao Kaihao2,Tao Ye2,Ge Zhenyou12ORCID,Wen Hongyan2,Chen Gaofeng34,Li Biao5,Xue Rui2,Jiang Xikai34ORCID,Zheng Xu34,Ren Yukun12ORCID

Affiliation:

1. State Key Laboratory of Robotics and System Harbin Institute of Technology Harbin 150001 P. R. China

2. School of Mechatronics Engineering Harbin Institute of Technology Harbin 150001 P. R. China

3. State Key Laboratory of Nonlinear Mechanics Institute of Mechanics Chinese Academy of Sciences Beijing P. R. China

4. School of Engineering Science University of Chinese Academy of Sciences Beijing 100049 P. R. China

5. School of Energy Science and Engineering Harbin Institute of Technology Harbin 150001 P. R. China

Abstract

AbstractRoom‐temperature liquid metal droplets (LMDs) are a promising material for various applications in soft robotics, active droplets, and biomedical devices. However, controllable and high‐throughput production of LMDs remains challenging due to their high surface tension and density. Here, a novel strategy is presented to produce LMDs by combining electric field‐induced electrocapillary flow with an external flow field. The basic mechanism is that the electrocapillary flow induced at the LMD/electrolyte interface forms a vortex ring in the electrolyte, creating a hurricane‐like effect in the tube, which in turn causes the liquid metal to deform and eventually pinch off into small droplets. It is demonstrated that droplet size and generation frequency can be controlled precisely by adjusting the applied electric current, flow rate, and surfactant concentration, establishing a relationship between radius and experimental parameters through dimensionless analysis. More importantly, this strategy can handle pendant droplets and facilitate programmable droplet patterning. Leveraging established relationships, flexible control over droplet size and spacing during patterning is attained. Furthermore, an iontronic pressure‐sensitive device based on LMDs and hydrogel is developed to showcase the versatility of the approach. This technique opens up new opportunities for fabricating soft circuits, composite materials, and other functional devices with LMDs.

Funder

National Natural Science Foundation of China

Chinese Academy of Sciences

National Key Research and Development Program of China

Publisher

Wiley

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