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电切换水下毛细粘附。

Electrically switched underwater capillary adhesion.

机构信息

Department of Mechanical Engineering, City University of Hong Kong, Hong Kong, 999077, China.

China-UK Low Carbon College, Shanghai Jiao Tong University, Shanghai, 201306, China.

出版信息

Nat Commun. 2022 Aug 6;13(1):4584. doi: 10.1038/s41467-022-32257-5.

Abstract

Developing underwater adhesives that can rapidly and reversibly switch the adhesion in wet conditions is important in various industrial and biomedical applications. Despite extensive progresses, the manifestation of underwater adhesion with rapid reversibility remains a big challenge. Here, we report a simple strategy that achieves strong underwater adhesion between two surfaces as well as rapid and reversible detachment in on-demand manner. Our approach leverages on the design of patterned hybrid wettability on surfaces that selectively creates a spatially confined integral air shell to preserve the water bridge in underwater environment. The overall adhesion strength can be multiplied by introducing multiple air shells and rapidly broken by disturbing the integrity of the protective air shell in response to the applied voltage on two surfaces. Our design can be constructed on the flexible substrate with hybrid wettability, which can be applied to non-conductive substrates and adapted to more complicated morphologies, extending the choice of underlying materials.

摘要

开发能够在潮湿条件下快速且可逆地切换粘附力的水下胶粘剂在各种工业和生物医学应用中很重要。尽管已经取得了广泛的进展,但表现出快速可逆的水下粘附力仍然是一个巨大的挑战。在这里,我们报告了一种简单的策略,可以在两个表面之间实现强大的水下粘附力,并且可以按需快速且可逆地分离。我们的方法利用表面图案化混合润湿性的设计,选择性地创建空间受限的整体空气壳,以在水下环境中保留水桥。通过引入多个空气壳,可以将整体粘附强度提高数倍,并通过响应施加在两个表面上的电压来破坏保护空气壳的完整性,从而迅速破坏。我们的设计可以构建在具有混合润湿性的柔性基板上,可以应用于非导电基板,并适应更复杂的形态,从而扩展了基础材料的选择。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7442/9357018/7a87152c2094/41467_2022_32257_Fig1_HTML.jpg

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