微尺度化学
材料科学
打滑(空气动力学)
润湿
微观结构
制作
纳米尺度
纳米技术
纳米结构
表面张力
表面光洁度
纳米-
复合材料
医学
物理
数学教育
数学
替代医学
病理
量子力学
热力学
作者
Choongyeop Lee,Chang‐Jin Kim
出处
期刊:Langmuir
[American Chemical Society]
日期:2009-07-17
卷期号:25 (21): 12812-12818
被引量:268
摘要
In an effort to maximize the liquid slip on superhydrophobic surfaces, we investigate the role of the nanoscale roughness on microscale structures by developing well-defined micro-nano hierarchical structures. The nonwetting stability and slip length on the dual-scale micro-nano structures are measured and compared with those on single-scale micro-smooth structures. A force balance between a liquid pressure and a surface tension indicates that hydrophobic nanostructures on the sidewall of microposts or microgrates would expand the range of the nonwetted state. When a higher gas fraction or a larger pitch can be tested without wetting, a larger slip length is expected on the microstructures. An ideal dual-scale structure is described that isolates the role of the nanostructures, and a fabrication technique is developed to achieve such a microstructure-smooth tops and nanostructured sidewalls. The tests confirm such micro-nano structures allow a nonwetted state at a higher gas fraction or a larger pitch than the previous micro-smooth structures. As a result, we achieve the maximum slip length of approximately 400 microm on the dual-scale structures, an increase of approximately 100% over the previous maximum reported on the single-scale (i.e., micro-smooth) structures. The study ameliorates our understanding of the role of each scale on hierarchical structures for a wetting transition and a liquid slip. The resulting giant slip is large enough to influence many fluidic applications, even in macroscale.
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