接触角
烷基
环境友好型
润湿
表面能
纳米技术
肉豆蔻酸
超疏水涂料
材料科学
化学工程
化学
有机化学
复合材料
生态学
生物
工程类
脂肪酸
棕榈酸
作者
Seyed Mohammad Reza Razavi,Junho Oh,Soumyadip Sett,Lezhou Feng,Xiao Yan,Muhammad Jahidul Hoque,Aihua Liu,Richard T. Haasch,Mahmood Masoomi,Rouhollah Bagheri,Nenad Miljkovic
出处
期刊:ACS Sustainable Chemistry & Engineering
[American Chemical Society]
日期:2017-10-25
卷期号:5 (12): 11362-11370
被引量:96
标识
DOI:10.1021/acssuschemeng.7b02424
摘要
Functional coatings that can achieve stable superhydrophobicity have the potential to significantly enhance a plethora of industrial applications ranging from building environmental control, phase change heat transfer, thermoelectric power generation, and hydrodynamic drag reduction. In order to create superhydrophobic surfaces, scientists have utilized a variety of surface structuring methods in combination with organosilane based alkyl and perfluorinated synthetic chemical coatings. Unfortunately, organosilane based alkyl and perfluorinated chemicals tend to be toxic, flammable, corrosive, difficult to dispose of, and damaging to the environment. Here, we develop two new methods to achieve superhydrophobicity using liquid phase deposition of cinnamic acid or myristic acid, both organic compounds derived from natural sources. By varying the liquid phase solution concentration, we develop deposition methods on scalable copper oxide microstructured surfaces capable of achieving apparent advancing contact angles as high as 154° and 165° for cinnamic and myristic acid, respectively, with low contact angle hysteresis (<15°). To demonstrate superhydrophobic performance, we utilize high speed optical microscopy to show stable coalescence induced droplet jumping during atmospheric water vapor condensation. This study presents a novel avenue for safer and more environmentally friendly fabrication of superhydrophobic surfaces for energy and water applications.
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