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通过微/纳米级颗粒的连续朗缪尔-布洛杰特沉积和表面硅烷化制备的分层结构超疏水涂层。

Hierarchically structured superhydrophobic coatings fabricated by successive Langmuir-Blodgett deposition of micro-/nano-sized particles and surface silanization.

作者信息

Tsai Ping-Szu, Yang Yu-Min, Lee Yuh-Lang

机构信息

Department of Chemical Engineering, National Cheng Kung University, Tainan 701, Taiwan.

出版信息

Nanotechnology. 2007 Nov 21;18(46):465604. doi: 10.1088/0957-4484/18/46/465604. Epub 2007 Oct 12.

Abstract

The present study demonstrates the creation of a stable, superhydrophobic surface by coupling of successive Langmuir-Blodgett (LB) depositions of micro- and nano-sized (1.5 µm/50 nm, 1.0 µm/50 nm, and 0.5 µm/50 nm) silica particles on a glass substrate with the formation of a self-assembled monolayer of dodecyltrichlorosilane on the surface of the particulate film. Particulate films, in which one layer of 50 nm particles was deposited over one to five sublayers of larger micro-sized particles, with hierarchical surface roughness and superhydrophobicity, were successfully fabricated. Furthermore, the present 'two-scale' (micro- and nano-sized particles) approach is superior to the previous 'one-scale' (micro-sized particles) approach in that both higher advancing contact angle and lower contact angle hysteresis can be realized. Experimental results revealed that the superhydrophobicity exhibited by as-fabricated particulate films with different sublayer particle diameters increases in the order of 0.5 µm>1.0 µm>1.5 µm. However, no clear trend between sublayer number and surface superhydrophobicity could be discerned. An explanation of superhydrophobicity based on the surface roughness introduced by two-scale particles is also proposed.

摘要

本研究表明,通过在玻璃基板上依次进行微尺寸和纳米尺寸(1.5 µm/50 nm、1.0 µm/50 nm和0.5 µm/50 nm)二氧化硅颗粒的朗缪尔-布洛杰特(LB)沉积,并在颗粒膜表面形成十二烷基三氯硅烷自组装单分子层,可创建稳定的超疏水表面。成功制备了颗粒膜,其中一层50 nm的颗粒沉积在一至五个较大微尺寸颗粒的子层上,具有分级表面粗糙度和超疏水性。此外,目前的“双尺度”(微尺寸和纳米尺寸颗粒)方法优于先前的“单尺度”(微尺寸颗粒)方法,因为可以实现更高的前进接触角和更低的接触角滞后。实验结果表明,不同子层粒径的制备颗粒膜表现出的超疏水性按0.5 µm>1.0 µm>1.5 µm的顺序增加。然而,子层数与表面超疏水性之间没有明显的趋势。还提出了基于双尺度颗粒引入的表面粗糙度对超疏水性的解释。

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