润滑油
材料科学
接触角
微尺度化学
表面光洁度
复合材料
莲花效应
润滑
表面粗糙度
纳米技术
磁滞
纺纱
纳米尺度
表面改性
剪切(地质)
化学工程
化学
数学教育
原材料
有机化学
工程类
物理
量子力学
数学
作者
Philseok Kim,Michael J. Kreder,Jack Alvarenga,Joanna Aizenberg
出处
期刊:Nano Letters
[American Chemical Society]
日期:2013-03-06
卷期号:13 (4): 1793-1799
被引量:455
摘要
Lubricant-infused textured solid substrates are gaining remarkable interest as a new class of omni-repellent nonfouling materials and surface coatings. We investigated the effect of the length scale and hierarchy of the surface topography of the underlying substrates on their ability to retain the lubricant under high shear conditions, which is important for maintaining nonwetting properties under application-relevant conditions. By comparing the lubricant loss, contact angle hysteresis, and sliding angles for water and ethanol droplets on flat, microscale, nanoscale, and hierarchically textured surfaces subjected to various spinning rates (from 100 to 10,000 rpm), we show that lubricant-infused textured surfaces with uniform nanofeatures provide the most shear-tolerant liquid-repellent behavior, unlike lotus leaf-inspired superhydrophobic surfaces, which generally favor hierarchical structures for improved pressure stability and low contact angle hysteresis. On the basis of these findings, we present generalized, low-cost, and scalable methods to manufacture uniform or regionally patterned nanotextured coatings on arbitrary materials and complex shapes. After functionalization and lubrication, these coatings show robust, shear-tolerant omniphobic behavior, transparency, and nonfouling properties against highly contaminating media.
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