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基于双重功能的坚固防冰表面——微观结构诱导的冰脱落与叠加的纳米结构增强的水脱落。

Robust Anti-Icing Surfaces Based on Dual Functionality─Microstructurally-Induced Ice Shedding with Superimposed Nanostructurally-Enhanced Water Shedding.

作者信息

Wood Michael J, Brock Gregory, Debray Juliette, Servio Phillip, Kietzig Anne-Marie

机构信息

Department of Chemical Engineering, McGill University, Montréal, Québec H3A 0C5, Canada.

出版信息

ACS Appl Mater Interfaces. 2022 Oct 19;14(41):47310-47321. doi: 10.1021/acsami.2c16972. Epub 2022 Oct 4.

Abstract

Research into anti-icing surfaces often conflates the two separate problems of ice accumulation: water adhesion and ice adhesion. The body feathers of perpetually ice-free penguins are very good natural examples of anti-icing surfaces, which use two different mitigation strategies for the two disparate problems. Herein, we mimic the form of the feather's wire-like structure, which is decorated with superimposed nanogrooves by laser micromachining fine woven wire cloths. Post-processing techniques also allow us to isolate the role of surface chemistry by creating both hydrophilic and hydrophobic versions of the synthetic anti-icing surfaces. Our results show that water-shedding and ice-shedding characteristics are indeed derived from different physical functions of the hierarchical structure. The microstructure of the woven wire cloth leads to facile interfacial cracking and therefore extremely low ice adhesion strengths; the superimposed laser-induced periodic surface structures with hydrophobic surface chemistry lead to water shedding. Our work shows that by first taking a fracture mechanics approach to designing the ice-shedding function, a robust anti-icing surface can be engineered by separately designing the water-shedding functions.

摘要

对防冰表面的研究常常将积冰的两个不同问题混为一谈

水附着力和冰附着力。常年不结冰的企鹅的体羽是防冰表面很好的天然例子,它们针对这两个不同问题采用了两种不同的缓解策略。在此,我们模仿羽毛的丝状结构形式,通过激光微加工精细编织金属丝网来制造带有叠加纳米凹槽的结构。后处理技术还使我们能够通过制造亲水性和疏水性两种合成防冰表面来分离表面化学的作用。我们的结果表明,排水和除冰特性确实源自分层结构的不同物理功能。编织金属丝网的微观结构导致界面易于开裂,因此冰附着力极低;具有疏水表面化学性质的叠加激光诱导周期性表面结构导致水的滑落。我们的工作表明,通过首先采用断裂力学方法设计除冰功能,可以通过分别设计排水功能来设计出坚固的防冰表面。

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