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Micropatterned Surfaces for Atmospheric Water Condensation via Controlled Radical Polymerization and Thin Film Dewetting

机译:通过可控的自由基聚合和薄膜去湿的大气冷凝水的微图案表面

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摘要

Inspired by an example found in nature, the design of patterned surfaces with chemical and topographical contrast for the collection of water from the atmosphere has been of intense interest in recent years. Herein we report the synthesis of such materials via a combination of macromolecular design and polymer thin film dewetting to yield surfaces consisting of raised hydrophilic bumps on a hydrophobic background. RAFT polymerization was used to synthesize poly(2-hydroxypropyl methacrylate) (PHPMA) of targeted molecular weight and low dispersity; spin-coating of PHPMA onto polystyrene films produced stable polymer bilayers under appropriate conditions. Thermal annealing of these bilayers above the glass transition temperature of the PHPMA layer led to complete dewetting of the top layer and the formation of isolated PHPMA domains atop the PS film. Due to the vastly different rates of water nucleation on the two phases, preferential dropwise nucleation of water occurred on the PHPMA domains, as demonstrated by optical microscopy. The simplicity of the preparation method and ability to target polymers of specific molecular weight demonstrate the value of these materials with respect to large-scale water collection devices or other materials science applications where patterning is required.
机译:受到自然界中一个实例的启发,近年来,具有化学和地形对比的图案化表面设计用于从大气中收集水非常受关注。本文中,我们报道了通过大分子设计和聚合物薄膜去湿相结合以产生由疏水背景上的凸起的亲水性凸起组成的表面的这种材料的合成。 RAFT聚合用于合成目标分子量和低分散性的聚(甲基丙烯酸2-羟丙酯)(PHPMA);在适当的条件下,将PHPMA旋涂到聚苯乙烯薄膜上可产生稳定的聚合物双层。在PHPMA层的玻璃化转变温度以上对这些双层进行热退火会导致顶层完全脱湿,并在PS膜上方形成孤立的PHPMA域。由于两相中水成核的速率差异很大,因此在光学光学显微镜下可以证明,在PHPMA域上发生了优先的逐滴水成核。制备方法的简单性和靶向特定分子量聚合物的能力证明了这些材料相对于需要图案化的大规模集水装置或其他材料科学应用的价值。

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