University of Wollongong
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Temperature-triggered liquid metal actuators for fluid manipulation by leveraging phase transition control

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journal contribution
posted on 2025-04-29, 23:34 authored by Hongda LuHongda Lu, J Yang, M Zhao, Qingtian ZhangQingtian Zhang, J Wang, Xiangbo ZhouXiangbo Zhou, Y Guo, Liping Gong, Zexin Chen, SY Tang, Weihua LiWeihua Li
Small-scale pumps for controlling microfluidics have promising applications in drug delivery and chemical assays. Liquid metal (LM) demonstrates excellent flow pumping performance due to its simple structure and the electrocapillary effect under an electric field. However, LM droplets risk escaping from constrained structures, which can lead to pump failure. Temperature regulation is also a critical parameter in optimizing chemical reactions in fluidic systems, however, integrating it into a compact system remains challenging. Here, we develop a temperature-triggered gallium-based actuator (TTGA) by introducing a gallium (Ga) droplet wetted on a copper (Cu) plate as the core element for flow actuation. The Cu plate prevents the Ga droplet from escaping the chamber and significantly increases the flow rate. By leveraging the electrochemical method to inhibit the supercooling effect of Ga, the TTGA enables activation/deactivation for flow actuation at different temperatures. We investigate the impact of electrode position, solution concentration, and applied voltage on TTGA’s pumping efficiency. By dynamically tuning the Ga droplet’s temperature to control phase transition, TTGA allows for accurate flow actuation control. Furthermore, placing Ga and eutectic Ga-indium (EGaIn) droplets in different channels enables the expected flow divergence for fluids with different temperatures. The development of TTGA presents new opportunities in microfluidics and biomedical treatment.

Funding

Liquid metal composite tactile sensor : Australian Research Council (ARC) | DP230100823

Electro-triggered solidification of supercooled fusible alloys : Australian Research Council (ARC) | FT230100257

History

Journal title

International Journal of Smart and Nano Materials

Volume

15

Issue

4

Pagination

730-742

Publisher

TAYLOR & FRANCIS LTD

Publication status

  • Published

Language

English

Associated Identifiers

grant.13583680 (dimensions-grant-id); grant.13279283 (dimensions-grant-id)