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仿生微纳结构对防冰性能的影响。

The effects of bio-inspired micro/nano scale structures on anti-icing properties.

机构信息

Institute of Refrigeration & Cryogenics Engineering, Dalian Maritime University, 116026, Dalian, China.

Fluids & Thermal Engineering Research Group, Faculty of Engineering, University of Nottingham, University Park, Nottingham NG7 2RD, UK.

出版信息

Soft Matter. 2021 Jan 21;17(3):447-466. doi: 10.1039/d0sm01683g. Epub 2021 Jan 6.

Abstract

Ice formation and accumulation have detrimental effects on commercial surfaces and people's lives. The ice adhesion strength decreases with increasing surface hydrophobicity, and the superhydrophobicity of a surface can be constructed by a combination of low surface free energy and high surface roughness. Conversely, the characteristics of biological surfaces have aroused wide attention as a result of the superhydrophobicity of plants and animals, deriving from the synergistic effects of chemical compositions and multi-scale hierarchical structures. Therefore, inspired by bio-mimetic studies on biological surfaces, a lot of artificial bio-inspired superhydrophobic surfaces have been broadly designed and constructed. Herein, we aim to summarize the fundamental theories of surface wettability and recent progress in the fabrication of bio-inspired surfaces. The bio-inspired surfaces prepared by different facile methods not only have superhydrophobicity, but also have anti-icing/icephobic properties. In the end, some challenges and problems in the future study and advancement of bio-inspired superhydrophobic surfaces are proposed.

摘要

冰的形成和积聚对商业表面和人们的生活有不利影响。冰的附着力随表面疏水性的增加而降低,表面的超疏水性可以通过低表面能和高表面粗糙度的组合来构建。相反,由于植物和动物的超疏水性,生物表面的特性引起了广泛的关注,这源于化学成分和多尺度分层结构的协同作用。因此,受生物表面仿生研究的启发,人们广泛设计和构建了大量的人工仿生超疏水表面。在这里,我们旨在总结表面润湿性的基本理论和仿生表面的最新进展。通过不同简单方法制备的仿生表面不仅具有超疏水性,而且具有抗冰/冰附着性能。最后,提出了仿生超疏水表面未来研究和发展中存在的一些挑战和问题。

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