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Fabrication of Long-Term Underwater Superoleophobic Al Surfaces and Application on Underwater Lossless Manipulation of Non-Polar Organic Liquids

机译:长期水下超疏油Al表面的制备及其在非极性有机液体的水下无损处理中的应用

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摘要

Underwater superoleophobic surfaces have different applications in fields from oil/water separation to underwater lossless manipulation. This kind of surfaces can be easily transformed from superhydrophilic surfaces in air, which means the stability of superhydrophilicity in air determines the stability of underwater superoleophobicity. However, superhydrophilic surfaces fabricated by some existing methods easily become hydrophobic or superhydrophobic in air with time. Here, a facile method combined with electrochemical etching and boiling water immersion is developed to fabricate long-term underwater superoleophobic surfaces. The surface morphologies and chemical compositions are investigated. The results show that the electrochemically etched and boiling-water immersed Al surfaces have excellent long-term superhydrophilicity in air for over 1 year and boehmite plays an important role in maintaining long-term stability of wettability. Based on the fabricated underwater superoleophobic surfaces, a special method and device were developed to realize the underwater lossless manipulation of immiscible organic liquid droplets with a large volume. The capture and release of liquid droplets were realized by controlling the resultant force of the applied driving pressure, gravity and buoyancy. The research has potential application in research-fields such as the transfer of valuable reagents, accurate control of miniature chemical reactions, droplet-based reactors, and eliminates contamination of manipulator components.
机译:水下超疏油表面在油/水分离到水下无损操纵等领域具有不同的应用。这种表面很容易从空气中的超亲水性表面转变而来,这意味着空气中超亲水性的稳定性决定了水下超疏油性的稳定性。然而,通过一些现有方法制造的超亲水性表面随时间容易在空气中变成疏水性或超疏水性。在这里,开发了一种结合电化学蚀刻和沸水浸泡的简便方法来制造长期水下超疏油表面。研究了表面形态和化学组成。结果表明,经电化学蚀刻和沸水浸泡的Al表面在空气中具有1年以上的长期长期超亲水性,而勃姆石在保持润湿性的长期稳定性方面起着重要作用。基于所制造的水下超疏油表面,开发了一种特殊的方法和装置,以实现大体积不混溶有机液滴的水下无损处理。通过控制所施加的驱动压力,重力和浮力的合力来实现液滴的捕获和释放。该研究在有价值的试剂的转移,微型化学反应的精确控制,基于液滴的反应器以及消除操纵器组件污染等研究领域中具有潜在的应用。

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