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通过湿化学途径由微结构化的氧化锌基表面制备超疏水表面。

Fabrication of superhydrophobic surfaces from microstructured ZnO-based surfaces via a wet-chemical route.

作者信息

Wu Xuedong, Zheng Lijun, Wu Dan

机构信息

Department of Chemistry, School of Chemistry and Chemical Technology, Shanghai Jiao Tong University, Shanghai 200240, People's Republic of China.

出版信息

Langmuir. 2005 Mar 29;21(7):2665-7. doi: 10.1021/la050275y.

Abstract

The fabrication of a superhydrophobic surface is demonstrated via a wet chemical route, and this method offers advantages of being cleanroom free, cost efficiency, and wide applicability. The preferable growth of ZnO crystalline forms a microstructured surface, and a variety of alkanoic acids were adopted to tune the surface wettability. Although all surfaces show an advancing contact angle greater than 150 degrees , they substantially differ in the wetting mechanisms. It is found that only when the length of alkanoic acid is greater than 16, the microstructured surface shows a stable superhydrophobicity, in which the Cassie state dominates. While for those moderate-length alkanoic acids (C8-C14), their corresponding surfaces have a tendency to fall into the Wenzel state and display a great contact angle hysteresis.

摘要

通过湿化学路线展示了超疏水表面的制备,该方法具有无需洁净室、成本效益高和适用性广的优点。ZnO晶体的择优生长形成了微结构表面,并采用了多种链烷酸来调节表面润湿性。尽管所有表面的前进接触角均大于150度,但它们的润湿机制却有很大不同。研究发现,只有当链烷酸的长度大于16时,微结构表面才会呈现稳定的超疏水性,其中Cassie状态占主导。而对于那些中等长度的链烷酸(C8-C14),其相应表面有陷入Wenzel状态并表现出较大接触角滞后的趋势。

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