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具有坚固灵活结构的仿生拒水表面

Biomimetic Water-Repelling Surfaces with Robustly Flexible Structures.

作者信息

Hu Songtao, Reddyhoff Tom, Li Jinbang, Cao Xiaobao, Shi Xi, Peng Zhike, deMello Andrew J, Dini Daniele

机构信息

State Key Laboratory of Mechanical System and Vibration, Shanghai Jiao Tong University, Shanghai 200240, China.

Department of Mechanical Engineering, Imperial College London, London SW7 2AZ, United Kingdom.

出版信息

ACS Appl Mater Interfaces. 2021 Jul 7;13(26):31310-31319. doi: 10.1021/acsami.1c10157. Epub 2021 Jun 25.

Abstract

Biomimetic liquid-repelling surfaces have been the subject of considerable scientific research and technological application. To design such surfaces, a flexibility-based oscillation strategy has been shown to resolve the problem of liquid-surface positioning encountered by the previous, rigidity-based asymmetry strategy; however, its usage is limited by weak mechanical robustness and confined repellency enhancement. Here, we design a flexible surface comprising mesoscale heads and microscale spring sets, in analogy to the mushroomlike geometry discovered on springtail cuticles, and then realize this through three-dimensional projection microstereolithography. Such a surface exhibits strong mechanical robustness against ubiquitous normal and shear compression and even endures tribological friction. Simultaneously, the surface elevates water repellency for impacting droplets by enhancing impalement resistance and reducing contact time, partially reaching an improvement of ∼80% via structural tilting movements. This is the first demonstration of flexible interfacial structures to robustly endure tribological friction as well as to promote water repellency, approaching real-world applications of water repelling. Also, a flexibility gradient is created on the surface to directionally manipulate droplets, paving the way for droplet transport.

摘要

仿生拒液表面一直是大量科学研究和技术应用的主题。为了设计这样的表面,一种基于柔韧性的振荡策略已被证明能够解决先前基于刚性的不对称策略所遇到的液-表面定位问题;然而,其应用受到机械鲁棒性弱和拒液性增强受限的限制。在此,我们设计了一种由中尺度头部和微尺度弹簧组组成的柔性表面,类似于在弹尾虫表皮上发现的蘑菇状几何结构,然后通过三维投影微立体光刻技术实现了这一设计。这样的表面对普遍存在的法向和剪切压缩表现出强大的机械鲁棒性,甚至能承受摩擦磨损。同时,该表面通过增强抗刺穿能力和减少接触时间提高了对冲击液滴的拒水性,通过结构倾斜运动部分实现了约80%的改善。这是首次证明柔性界面结构能够稳健地承受摩擦磨损并提高拒水性,接近拒水的实际应用。此外,在表面上创建了一个柔韧性梯度,以定向操纵液滴,为液滴传输铺平了道路。

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