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Springtail-inspired superomniphobic surface with extreme pressure resistance

机译:跳尾启发的超憎水表面具有极高的耐压性

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摘要

Both high static repellency and pressure resistance are critical to achieving a high-performance omniphobic surface. The cuticles of springtails have both of these features, which result from their hierarchical structure composed of primary doubly reentrant nanostructures on secondary microgrooves. Despite intensive efforts, none of the previous studies that were inspired by the springtail were able to simultaneously achieve both high static repellency and pressure resistance because of a general trade-off between these characteristics. We demonstrate for the first time a springtail-inspired superomniphobic surface displaying both features by fabricating a hierarchical system consisting of serif-T–shaped nanostructures on microscale wrinkles, overcoming previous limitations. Our biomimetic strategy yielded a surface showing high repellency to diverse liquids, from water to ethanol, with a contact angle above 150°. Simultaneously, the surface was able to endure extreme pressure resulting from the impacts of drops of water and of ethylene glycol with We >> 200, and of ethanol with We ~ 53, which is the highest pressure resistance ever reported. Overall, the omniphobicity of our springtail-inspired fabricated system was found to be superior to that of the natural springtail cuticle itself.
机译:高静电排斥性和耐压性对于获得高性能全憎性表面都至关重要。跳尾的角质层具有这两个特征,这是由于它们的层级结构由次级微槽上的初级双折角纳米结构组成。尽管付出了巨大的努力,但先前的研究并未受到跳尾的启发,因为在这些特性之间进行了一般性的权衡,因此无法同时实现较高的抗静电性和耐压性。我们通过制造由细纹皱纹上的衬线T形纳米结构组成的分层系统,克服了先前的局限性,首次证明了具有跳尾风格的超憎水表面,同时显示了这两种功能。我们的仿生策略产生了一种表面,该表面对各种液体(从水到乙醇)具有很高的排斥力,接触角超过150°。同时,由于We 200的水滴和乙二醇以及We〜53的乙醇滴,表面能够承受极高的压力,这是有史以来最高的耐压性。总体而言,我们发现,以跳尾为灵感的预制系统的憎水性要优于天然跳尾表皮本身。

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