An Active Strategy Based on Different Droplet Removal Modes on Polydimethylsiloxane Magnetic Microstructures

SMALL(2024)

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摘要
The efficient removal of droplets on solid surfaces holds significant importance in the field of fog collection, condensation heat transfer, and so on. However, on current typical surfaces, droplets are characterized by a passive and single removal mode, contingent on the traction force (e.g., capillary force, Laplace pressure, etc.) generated by the surface's physics and chemistry design, posing challenges for enhancing the efficiency of droplet removal. In this paper, an effective active strategy based on different removal modes is demonstrated on magnetic responsive polydimethylsiloxane (PDMS) superhydrophobic microplates (RM-MPSM). By regulating the parameters of microplates and droplet volume, different effective departure modes (top jumping and side departure) can be induced to facilitate the removal of droplets. Moreover, the removal volume of droplets through the side departure mode exhibits a significant reduction compared to that observed in the top jumping mode. The exceptional removal ability of RM-MPSM demonstrates adaptability to diverse functional applications: efficient fog collection, removal of condensation droplets and micro-particles. The efficient modes of droplet removal demonstrated in this work hold significant implications for broadening its application in many fields, such as droplet collection, heat transfer, and anti-icing. Inspired by the dynamic oscillations of mammalian cilia, an effective active strategy based on different removal modes is demonstrated on magnetic responsive polydimethylsiloxane (PDMS) microplates and microarrays. This universal strategy based on different departure modes demonstrated adaptability to diverse functional applications: highly efficient fog collection, removal of condensation droplets and micro-particles. image
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关键词
droplet condensation,fog collection,magnetic control,multiple removal modes,polydimethylsiloxane microarrays,removal of microparticles
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