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从天然到仿生:超疏水性与接触时间。

From natural to biomimetic: The superhydrophobicity and the contact time.

作者信息

Liang Yun-Hong, Peng Jian, Li Xiu-Juan, Xu Jin-Kai, Zhang Zhi-Hui, Ren Lu-Quan

机构信息

Key Laboratory of Bionic Engineering (Ministry of Education, China), Jilin University, Changchun, 130025, China.

State Key Laboratory of Automotive Simulation and Control, Jilin University, Changchun, 130025, China.

出版信息

Microsc Res Tech. 2016 Aug;79(8):712-20. doi: 10.1002/jemt.22689. Epub 2016 Jun 2.

Abstract

The superhydrophobicities and the contact time of lotus leaf and reed leaf were investigated. The results indicated that both lotus leaf and reed leaf have good superhydrophobic properties, and the water contact time was 12.7 and 14.7 ms on the surface of lotus leaf and reed leaf, respectively. Surface structure plays a key role in the different contacting times. Homogeneous distribution of papillae on the surface of lotus leaf was more helpful to reduce the contact time than anisotropic groove-shape on the surface of reed leaf. Based on the bionics coupling theory, the bionics sample possessing similar lotus-leaf-like surface structure on the aluminum alloy was designed and fabricated successfully. The water contact angle was about 153 ± 2°, sliding angle less than 5°, and the water contact time was 13.4 ms on the surface of bionics sample, which presented excellent superhydrophobic property, and achieved the aim of bionic design. Microsc. Res. Tech. 79:712-720, 2016. © 2016 Wiley Periodicals, Inc.

摘要

研究了荷叶和芦苇叶的超疏水性及接触时间。结果表明,荷叶和芦苇叶均具有良好的超疏水性,在荷叶和芦苇叶表面的水接触时间分别为12.7毫秒和14.7毫秒。表面结构在不同的接触时间中起关键作用。荷叶表面乳突的均匀分布比芦苇叶表面各向异性的沟槽形状更有助于缩短接触时间。基于仿生耦合理论,成功设计并制备了在铝合金上具有类似荷叶表面结构的仿生样品。仿生样品表面的水接触角约为153±2°,滑动角小于5°,水接触时间为13.4毫秒,呈现出优异的超疏水性,实现了仿生设计的目的。《微观研究与技术》79:712 - 720,2016年。©2016威利期刊公司

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