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Transparent Photothermal Metasurfaces Amplifying Superhydrophobicity by Absorbing Sunlight

机译:通过吸收阳光放大超细侵蚀性的透明光热元件

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Imparting and maintaining surface superhydrophobicity has been receiving significant research attention over the last several years, driven by a broad range of important applications and enabled by advancements in materials and surface nanoengineering. Researchers have investigated the effect of temperature on droplet–surface interactions, which poses additional challenges when liquid nucleation manifests itself, due to ensuing condensation into the surface texture that compromises its antiwetting behavior. Maintaining surface transparency at the same time poses an additional and significant challenge. Often, the solutions proposed are limited by working temperatures or are detrimental to visibility through the surface. Here we introduce a scalable method employing plasmonic photothermal metasurface composites, able to harvest sunlight and naturally heat the surface, sustaining water repellency and transparency under challenging environmental conditions where condensation and fogging would otherwise be strongly promoted. We demonstrate that these surfaces, when illuminated by sunlight, can prevent impalement of impacting water droplets, even when the droplet to surface temperature difference is 50 °C, by suppressing condensate formation within the texture, maintaining transparency. We also show how the same transparent metasurface coating could be combined and work collaboratively with hierarchical micro- and nanorough textures, resulting in simultaneous superior pressure-driven impalement resistance and avoidance of water nucleation and related possible frosting in supercooled conditions. Our work can find a host of applications as a sustainable solution against impacting water on surfaces such as windows, eyewear, and optical components.
机译:赋予和维护表面超疏水性在过去几年中受到显着的研究注意,这是由广泛的重要应用驱动,并通过材料和表面纳米工程的进步实现。研究人员研究了温度对液滴 - 表面相互作用的影响,当液体成核表现出来时,由于将凝固到抗雨刷行为的表面纹理被凝结到液体成核表现出来,这造成了额外的挑战。同时保持表面透明度造成额外和重大挑战。通常,提出的解决方案受到工作温度的限制,或者通过表面可利于可见性。在这里,我们介绍了一种采用等离子体光热元表面复合材料的可伸缩方法,能够收获阳光,并且自然地加热表面,在挑战凝结和雾化的环境条件下维持防水性和透明度,否则将被强烈促进凝结和雾化。我们证明,当阳光照射时,这些表面可以防止冲击水滴的释放,即使在表面温差为50℃时,通过抑制纹理内的冷凝水,保持透明度。我们还展示了如何合并相同的透明元表面涂层,并通过分层微高和纳米核和纳米核纹理合作,导致同时卓越的压力驱动矛盾抵抗和避免水成核和相关的过冷条件下的可能脱脂。我们的工作可以找到一系列申请作为防止窗户,眼镜和光学组件等冲击水的可持续解决方案。

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