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受章鱼吸盘突起启发的耐湿粘性贴片。

A wet-tolerant adhesive patch inspired by protuberances in suction cups of octopi.

机构信息

School of Chemical Engineering, Sungkyunkwan University, Suwon, Kyunggi-do 16419, South Korea.

SKKU Advanced Institute of Nanotechnology (SAINT), Sungkyunkwan University, Suwon, Kynggi-do 16419, South Korea.

出版信息

Nature. 2017 Jun 14;546(7658):396-400. doi: 10.1038/nature22382.

Abstract

Adhesion strategies that rely on mechanical interlocking or molecular attractions between surfaces can suffer when coming into contact with liquids. Thus far, artificial wet and dry adhesives have included hierarchical mushroom-shaped or porous structures that allow suction or capillarity, supramolecular structures comprising nanoparticles, and chemistry-based attractants that use various protein polyelectrolytes. However, it is challenging to develop adhesives that are simple to make and also perform well-and repeatedly-under both wet and dry conditions, while avoiding non-chemical contamination on the adhered surfaces. Here we present an artificial, biologically inspired, reversible wet/dry adhesion system that is based on the dome-like protuberances found in the suction cups of octopi. To mimic the architecture of these protuberances, we use a simple, solution-based, air-trap technique that involves fabricating a patterned structure as a polymeric master, and using it to produce a reversed architecture, without any sophisticated chemical syntheses or surface modifications. The micrometre-scale domes in our artificial adhesive enhance the suction stress. This octopus-inspired system exhibits strong, reversible, highly repeatable adhesion to silicon wafers, glass, and rough skin surfaces under various conditions (dry, moist, under water and under oil). To demonstrate a potential application, we also used our adhesive to transport a large silicon wafer in air and under water without any resulting surface contamination.

摘要

依赖于表面间机械互锁或分子吸引力的粘附策略在与液体接触时可能会失效。迄今为止,人工湿/干粘合剂包括允许抽吸或毛细作用的分层蘑菇状或多孔结构、包含纳米颗粒的超分子结构以及使用各种蛋白质聚电解质的基于化学的吸引力。然而,开发出既易于制造又能在干湿条件下都能良好且反复地发挥作用、同时避免粘附表面的非化学污染的粘合剂是具有挑战性的。在这里,我们提出了一种基于章鱼吸盘中发现的穹顶状隆起的人工、受生物启发的可逆湿/干粘附系统。为了模拟这些隆起的结构,我们使用了一种简单的基于溶液的空气捕获技术,涉及制造图案化结构作为聚合物母版,并使用它来生产反转结构,而无需任何复杂的化学合成或表面修饰。我们人工粘合剂中的微米级穹顶增强了抽吸应力。受章鱼启发的系统在各种条件下(干燥、潮湿、水下和油下)对硅片、玻璃和粗糙皮肤表面表现出强大、可逆、高度可重复的粘附力。为了展示潜在的应用,我们还使用我们的粘合剂在空气中和水下运输大型硅片,而不会造成任何表面污染。

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