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Thermal imprint techniques for preparation of superhydrophobic polymer coatings

机译:热压印技术用于制备超疏水性聚合物涂料

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The self-cleaning property of superhydrophobic surfaces has raised considerable interest among scientists. Many preparation methods require complex and expensive fabrication techniques that cannot be used to directly modify substrates. We designed an imprint process using a microano-structured mold to emboss several polymer coatings in order to introduce superhydrophobicity and still maintain their transparent/translucent properties. Polydimethylsiloxane (PDMS) elastic molds with various micro and nano features were fabricated using different grades of sandpaper as master molds, increasing the water contact angles (WCAs) on the PDMS surfaces from 120° (plain) to more than 170°. The PDMS molds were then applied to replicate some commercial polymer coatings at an elevated temperature of about 140. °C to transfer the mold pattern to the coatings. The hydrophobic property of those polymer coatings was then enhanced to a WCA of greater than 150°. After fluoroalkylsilane deposition on the surfaces, the surfaces displayed an improved lipophobic property (hexadecane contact angle (HCA) went from 90° to 110°). The arbitrarily-rough surfaces displayed 'sticky superhydrophobicity' due to the water drops being adsorbed and not rolling off from the surfaces. Atomic force microscopy (AFM) was employed to measure the morphologies of imprinted coatings and also estimate the roughness, occupying polymer ratios, and critical CA to evaluate the wetting of sample surfaces. From the evaluation of surface properties, all the samples using sandpaper as templates exhibited stable Cassie or metastable wetting. The rougher surfaces provided some large protrusions to contact with and be immersed into water droplets, leading to high water penetration depth and thus stickiness. Additionally, the rougher the mold was, the greater the WCA was, but the transparency of the coating was reduced. However, the imprinted polymer surfaces could still maintain sufficient transparency for use in applications requiring preservation of the appearance of the underlying surface.
机译:超疏水表面的自清洁特性引起了科学家的极大兴趣。许多制备方法需要复杂且昂贵的制造技术,这些技术不能用于直接修饰衬底。我们设计了一种压印工艺,该工艺使用微/纳米结构的模具压印多种聚合物涂层,以引入超疏水性并仍保持其透明/半透明的特性。使用不同等级的砂纸作为母模制造具有各种微米和纳米特征的聚二甲基硅氧烷(PDMS)弹性模具,从而将PDMS表面上的水接触角(WCA)从120°(平角)增加到170°以上。然后将PDMS模具用于在约140°C的高温下复制一些商用聚合物涂层,以将模具图案转移到涂层上。然后将那些聚合物涂层的疏水性提高到WCA大于150°。在氟烷基硅烷沉积在表面上之后,表面显示出改善的疏油性(十六烷接触角(HCA)从90°变为110°)。由于水滴被吸附并且没有从表面滚落,所以任意粗糙的表面都显示出“粘性超疏水性”。原子力显微镜(AFM)用于测量压印涂层的形貌,还可以评估粗糙度,占据的聚合物比例和临界CA,以评估样品表面的润湿性。根据表面性质的评估,所有使用砂纸作为模板的样品均表现出稳定的卡西或亚稳润湿性。较粗糙的表面提供了一些较大的突起,以与水滴接触并浸入其中,从而导致较高的水渗透深度并因此产生粘性。另外,模具越粗糙,WCA越大,但是涂层的透明度降低。然而,压印的聚合物表面仍然可以保持足够的透明度,以用于需要保持下面的表面的外观的应用中。

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