首页> 外文会议>International Conference on Advanced Materials Processing >FABRICATION OF HIGHLY-OLEOPHOBIC AND SUPERHYDROPHOBIC SURFACES ON MICROTEXTURED Al SUBSTRATES
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FABRICATION OF HIGHLY-OLEOPHOBIC AND SUPERHYDROPHOBIC SURFACES ON MICROTEXTURED Al SUBSTRATES

机译:微横梁基材上高疏水和超疏水表面的制备

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Theoretical calculations suggest that creating highly-oleophobic surfaces would require a surface energy lower than that of any known materials. In the present work, we demonstrate microtextured Al substrate surfaces with veins-like micro/nanostructures displaying apparent contact angles (CA) greater than 120°, even with nitromethane (surface tension γ_1 = 37 mN/m). The Al substrate was microtextured by a chemical solution mixed by zinc nitrate hexahydrate, hexamethyltetramine and a little of hydrofluoric acid. A fluoroalkylsilane (FAS) agent was used to tune the surface wettability. The Al substrates were microtextured by veins-like micro/nanostructures and generating a solid-liquid-vapor composite interface. Combination with FAS modification, the Al surfaces resulted in an oleophobicity with CA for nitromethane was 126.3° (152.7° for diethylene glycol, γ_1= 45.2 mN/m). In addition, the Al surfaces demonstrated a low rolling-off angle with <6° even for diethylene glycol. However, nitromethane droplet favored to pin on the sample surface even the sample stage is tilted to 90°. It is noted that this highly-oleophobic behavior is induced mainly by topography, which form a composite surface of air and solid with oil drop sitting partially on air. The results are expected to promote the study on self-cleaning applications, especially in the condition with oil contaminations.
机译:理论计算表明,创建高度疏油表面将需要的表面能量比任何已知的材料的低。在目前的工作中,我们证明显微Al基板表面与脉状显示表观接触角(CA)大于120微米/纳米结构°,甚至与硝基甲烷(表面张力γ_1= 37 mN / m的)。 Al基板通过用硝酸锌六水合物,hexamethyltetramine和氢氟酸的混合小的化学溶液显微。氟烷基硅烷(FAS)剂用于调整表面的润湿性。在Al基材通过脉状微/纳米结构和生成固体 - 液体 - 蒸汽复合界面显微。结合FAS变形例中,在Al表面产生了具有CA的疏油性为硝基甲烷为126.3°(152.7°,二甘醇,γ_1= 45.2 mN / m的)。此外,在Al表面表现出低滚动断角与<6°即使对于二甘醇。然而,硝基甲烷液滴青睐销样品表面甚至样品台倾斜至90°上。值得注意的是,这种高度疏油特性主要诱导形貌,形成空气的复合材料表面和固体与油滴部分坐在空气。结果有望推动自我清洁应用研究,特别是在石油污染的条件。

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