Wang Hujun, Zhang Zhihui, Wang Zuankai, Liang Yunhong, Cui Zhenquan, Zhao Jie, Li Xiujuan, Ren Luquan
Department of Mechanical Engineering , City University of Hong Kong , Hong Kong 999077 , People's Republic of China.
ACS Appl Mater Interfaces. 2019 Aug 7;11(31):28478-28486. doi: 10.1021/acsami.9b07941. Epub 2019 Jul 26.
The switchable wettability is essential for widespread applications in droplet manipulation, rewritable liquid patterning, fluid carrying, and so forth. However, it remains difficult to achieve the multistimuli-responsive, large-range, and reversible wetting switching especially for liquids with low surface tensions through surface topographical management. Here, we apply a simple and effective template-free self-assembly strategy to fabricate microstructured superamphiphobic surfaces that can reversibly switch the wetting performance for oil by transforming the surface morphology in response to multiple stimuli of magnetic fields and mechanical strains. Notably, the noticeably different wetting switching of oil triggered by different stimuli is demonstrated. The contact angles of hexadecane droplets on the as-prepared surfaces can be reversibly switched between 150 ± 1° and 38 ± 2° in response to mechanical strains. Furthermore, the underlying mechanism of wetting switching has been further elucidated using mathematical models. Interestingly, these switchable surfaces dramatically demonstrate the ability to transport oil droplets, without requiring lubricating liquid films. This work not only achieves the large-range and reversible wetting switching for oil but also opens new avenues for fabricating tunable superamphiphobic surfaces with transformable mushroom-like microstructures that can be easily extended to microstructure-dependent friction or adhesion control and used in other fields.
可切换润湿性对于在液滴操纵、可重写液体图案化、流体输送等方面的广泛应用至关重要。然而,通过表面形貌控制实现多刺激响应、大范围且可逆的润湿性切换仍然很困难,特别是对于低表面张力的液体。在此,我们应用一种简单有效的无模板自组装策略来制备微结构化超疏水表面,该表面可通过响应磁场和机械应变的多重刺激改变表面形貌,从而可逆地切换对油的润湿性能。值得注意的是,展示了由不同刺激引发的油的显著不同的润湿性切换。十六烷液滴在制备好的表面上的接触角可响应机械应变在150±1°和38±2°之间可逆切换。此外,使用数学模型进一步阐明了润湿性切换的潜在机制。有趣的是,这些可切换表面显著展示了输送油滴的能力,而无需润滑液膜。这项工作不仅实现了对油的大范围且可逆的润湿性切换,还为制造具有可转变蘑菇状微结构的可调谐超疏水表面开辟了新途径,这种微结构可轻松扩展到依赖微结构的摩擦或粘附控制,并应用于其他领域。