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适用于任何基材的类硅晶圆超疏水液体层的设计与高分辨率表征

Design and High-Resolution Characterization of Silicon Wafer-like Omniphobic Liquid Layers Applicable to Any Substrate.

作者信息

Khatir Behrooz, Shabanian Sadaf, Golovin Kevin

机构信息

Okanagan Polymer Engineering Research & Applications Laboratory, School of Engineering, University of British Columbia, Kelowna, British Columbia V1V 1V7, Canada.

出版信息

ACS Appl Mater Interfaces. 2020 Jul 15;12(28):31933-31939. doi: 10.1021/acsami.0c06433. Epub 2020 Jun 15.

Abstract

Liquid fouling can reduce the functionality of critical engineering surfaces. Recent studies have shown that minimizing contact angle hysteresis is a promising strategy for achieving omniphobic (all-liquid repellent) properties, thereby inhibiting fouling. Prior omniphobic films can repel a broad range of liquids, but the applicability of these coatings has always been limited to silicon wafers or smooth glass. Here we develop a facile procedure to generate an omniphobic coating on any surface, including metals, paper, ceramics, etc. The coating involves depositing an ultrasmooth, silicon wafer-like silica layer and then treating this layer with a highly reactive chlorosilane, which grafts polydimethylsiloxane chains onto the surface. Negligible contact angle hysteresis (≤1°) for various liquids, including ultralow surface tension oils, alcohols, and fluoro-solvents, was achieved on many different substrates regardless of their initial roughness or chemistry. In fact, the contact angle hysteresis was so low we were forced to propose an alternate measurement technique, using tilt angles, that reduced the inherent errors associated with traditional contact angle goniometry. The coating's durability was characterized and, when it was damaged, could be repeatedly repaired, fully restoring the omniphobic properties to their initial state.

摘要

液体污垢会降低关键工程表面的功能。最近的研究表明,将接触角滞后降至最低是实现超疏水(全液体排斥)性能从而抑制污垢的一种很有前景的策略。先前的超疏水膜可以排斥多种液体,但这些涂层的适用性一直局限于硅片或光滑玻璃。在此,我们开发了一种简便方法,可在任何表面(包括金属、纸张、陶瓷等)上制备超疏水涂层。该涂层包括沉积一层超光滑的、类似硅片的二氧化硅层,然后用高反应性氯硅烷处理该层,从而将聚二甲基硅氧烷链接枝到表面。在许多不同的基材上,无论其初始粗糙度或化学性质如何,对于包括超低表面张力油、醇类和氟溶剂在内的各种液体,都实现了可忽略不计的接触角滞后(≤1°)。实际上,接触角滞后非常低,以至于我们不得不提出一种使用倾斜角的替代测量技术,该技术减少了与传统接触角测角法相关的固有误差。对该涂层的耐久性进行了表征,当它受损时,可以反复修复,将超疏水性能完全恢复到初始状态。

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