Research on micro-machines is becoming popular. In this paper, the electric driving behavior of liquid metal columns in confining channel was studied. When the electric field was applied, the liquid metal near the negative electrode became flat, longer. The NaOH electrolyte (1.0 mol/L) could flow from the positive electrode to the negative electrode from a small space above the liquid metal column. Besides, the length and volume of the liquid metal would affect its motion and deformation behavior. Both cylindrical liquid column (R = 5 mm, L = 5 cm) and linear liquid column (R = 5 mm, L = 40 cm) exhibit deformable movements, which are similar to the bionic movements of earthworms. The electrically driven liquid metal in closed systems could provide a theoretical basis for droplet actuation in microtubes. It has a very wide application prospect in the field of micro-drive machines.
Shuting Liang
,
Zengwei Wang
,
Fengjiao Li
,
Mengjun Huang
,
Ge Ding
. Study on the Electric Actuation of Liquid Metal Column in Confining System[J]. Chinese Journal of Mechanical Engineering, 2022
, 35(3)
: 60
-60
.
DOI: 10.1186/s10033-022-00741-0
Research on micro-machines is becoming popular. In this paper, the electric driving behavior of liquid metal columns in confining channel was studied. When the electric field was applied, the liquid metal near the negative electrode became flat, longer. The NaOH electrolyte (1.0 mol/L) could flow from the positive electrode to the negative electrode from a small space above the liquid metal column. Besides, the length and volume of the liquid metal would affect its motion and deformation behavior. Both cylindrical liquid column (R = 5 mm, L = 5 cm) and linear liquid column (R = 5 mm, L = 40 cm) exhibit deformable movements, which are similar to the bionic movements of earthworms. The electrically driven liquid metal in closed systems could provide a theoretical basis for droplet actuation in microtubes. It has a very wide application prospect in the field of micro-drive machines.
[1] R M Hormigos, B J Sánchez, A Escarpa. Labs-on-a-chip meet self-propelled micromotors. Lab Chip, 2016, 16: 2397–2407.
[2] W Q Zhou, Q X Liang, T N Chen. 3D Manipulation of Magnetic Liquid Metals. Adv. Intell. Syst, 2020: 1900170.
[3] S T Liang, C W Wang, F J Li, et al. Supported Cu/W/Mo/Ni—liquid metal catalyst with core-shell structure for photocatalytic degradation. Catalysts, 2021, 11: 1419.
[4] J Shu, S Y Tang, Z H Feng, et al. Unconventional locomotion of liquid metal droplets driven by magnetic fields. Soft Matter, 2018, 14: 7113–71185.
[5] R Chen, Q Xiong, R Z Song, et al. Magnetically controllable liquid metal marbles. Adv. Mater. Interfaces, 2019: 1901057.
[6] J Wu, S Y Tang, T Fang, et al. A wheeled robot driven by a liquid-metal droplet. Adv. Mater., 2018: 1805039.
[7] S H Wang, Y Z Chen, L F Zhu, et al. Electric actuation of liquid metal droplets in acidified aqueous electrolyte. Langmuir, 2019, 35: 372-381.
[8] F X Li, S L Kuang, X P Li, et al. Magnetically and electrically-controllable functional liquid metal droplets. Adv. Mater. Technol., 2019: 1800694.
[9] J W Jeonga, J B Leeb, S K Chung, et al. Electromagnetic three-dimensional liquid metal manipulation. Lab Chip, 2019, 19: 3261–3267.
[10] J Guo, J Cheng, H Tan, et al. Effect of electric field on the lubricating performance of Ga-based liquid metal. Adv. Mater. Interfaces, 2019: 1900028.
[11] T Z Bu, H Yang, W B Liu, et al. Triboelectric effect-driven liquid metal actuators. Soft Robotics, 2019, 5: 6.
[12] S Y Tang, K Khoshmanesh, V Sivan, et al. Liquid metal enable pump. Proceedings of the National Academy of Sciences of the United States of America, 2014, 111: 3304–3309.
[13] L Sheng, J Zhang, J Liu. Diverse transformations of liquid metals between different morphologies. Advanced Materials, 2014, 26: 6036–6042.