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首页> 外文期刊>ACS applied materials & interfaces >Microdrop-Assisted Microdomain Hydrophilicization of Superhydrophobic Surfaces for High-Efficiency Nucleation and Self-Removal of Condensate Microdrops
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Microdrop-Assisted Microdomain Hydrophilicization of Superhydrophobic Surfaces for High-Efficiency Nucleation and Self-Removal of Condensate Microdrops

机译:微滴辅助微莫德的超疏水表面亲水化,用于高效成核和清除冷凝水微量术

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摘要

Superhydrophobic-hydrophilic hybrid surfaces have attracted intensive interest because of their significant academic and commercial values. However, almost all reported microdomain hydrophilicization methods rely on costly micropatterning techniques that need special instruments. Here, we report a microdrop-assisted method for microdomain hydrophilicization of a low-adhesive superhydrophobic surface and demonstrate its utility in high efficiency nucleation and self-removal of condensate microdrops. Micrometer sized fogdrops containing polyvinyl alcohol molecules can be selectively captured by breath figures of superhydrophobic surfaces with specific sizes and spatial distributions and can be converted into desired hydrophilic microdomains after thermal evaporation. After exploring the influence of hydrophilic microdomains' distributions and sizes to surface wettability, adhesion, and condensation dynamics, we achieved an optimal hybrid surface, which possesses 240% average microdrop density, 387% microdrop self-removal rate, and 75% average microdrop diameter as compared to the contrast superhydrophobic surface with uniform chemistrynature. This method is dispensed with special equipment, easy to implement, very cheap, and eco-friendly, which would help develop other superhydrophobic-hydrophilic hybrid surfaces with different functions such as water harvesting, dehumidification, and heat exchange.
机译:超疏水 - 亲水性杂交表面由于其重要的学术和商业价值而引起了密集的利益。然而,几乎所有报道的微摩擦亲水化方法都依赖于需要特殊仪器的昂贵的微型陶工技术。在这里,我们报告了一种微滴辅助方法,用于低粘合的超疏水表面的微摩擦性化亲水化,并证明其在高效成核和凝析液微量核的高效成核和自除效用。含有聚乙烯醇分子的微米尺寸的雾化物可以通过具有特定尺寸和空间分布的超疏水表面的呼吸图选择性地捕获,并且可以在热蒸发后转化为所需的亲水微摩粉。在探索亲水性微摩粉的分布和尺寸对表面润湿性,粘附和凝结动力学的影响之后,我们实现了最佳的杂化表面,其具有240%的平均微滴密度,387%的微摩擦自去除率和75%的平均微摩擦直径与具有均匀化学性的对比式超疏水表面相比。该方法配有特殊设备,易于实施,非常便宜,非常友好,这将有助于开发其他超疏水 - 亲水的混合表面,具有不同的功能,例如水收集,除湿和热交换。

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