Akhtar Naureen, Thomas Peter J, Svardal Benny, Almenningen Stian, de Jong Edwin, Magnussen Stian, Onck Patrick R, Fernø Martin A, Holst Bodil
Department of Physics and Technology , University of Bergen , P.O. Box 7803, NO-5020 Bergen , Norway.
Zernike Institute for Advanced Materials , University of Groningen , Nijenborgh 4 , NL-9747AG Groningen , The Netherlands.
Nano Lett. 2018 Dec 12;18(12):7509-7514. doi: 10.1021/acs.nanolett.8b02982. Epub 2018 Nov 9.
Surfaces that stay clean when immersed in water are important for an enormous range of applications from ships and buildings to marine, medical, and other equipment. Up until now the main strategy for designing self-cleaning surfaces has been to combine hydrophilic/hydrophobic coatings with a high aspect ratio structuring (typically micron scale pillars) to trap a (semi)static water/air layer for drag and adhesion reduction. However, such coating and structuring can distort optical properties and get damaged in harsh environments, and contamination, i.e., particles, oil droplets, and biofouling, can get trapped and aggregate in the structure. Here we present a radically different strategy for self-cleaning surface design: We show that a surface can be made self-cleaning by structuring with a pattern of very low aspect ratio pillars ("pancakes"). Now the water is not trapped. It can flow freely around the pancakes thus creating a dynamic water layer. We have applied the new pancake design to sapphire windows and made the first surfaces that are self-cleaning through structuring alone without the application of any coating. An offshore installation has now been running continuously with structured windows for more than one year. The previous uptime for unstructured windows was 7 days.
对于从船舶、建筑到海洋、医疗及其他设备等众多应用领域而言,浸入水中仍能保持清洁的表面至关重要。到目前为止,设计自清洁表面的主要策略是将亲水/疏水涂层与高纵横比结构(通常是微米级柱体)相结合,以捕获一个(半)静态水/空气层来减少阻力和附着力。然而,这种涂层和结构可能会扭曲光学性能,并且在恶劣环境中会受到损坏,而且污染物,即颗粒、油滴和生物污垢,可能会被困在结构中并聚集起来。在此,我们提出一种截然不同的自清洁表面设计策略:我们证明,通过用极低纵横比的柱体(“薄饼”)图案进行结构化处理,可以使表面具有自清洁功能。现在水不会被困住。它可以在薄饼周围自由流动,从而形成一个动态水层。我们已将这种新的薄饼设计应用于蓝宝石窗口,并制造出了首个仅通过结构化处理而无需施加任何涂层就能实现自清洁的表面。现在,一个海上装置使用结构化窗口已经连续运行了一年多。之前非结构化窗口的正常运行时间为7天。