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CHARACTERIZATION OF JUMPING-DROPLET CONDENSATION ON NANOSTRUCTURED SURFACES WITH QUARTZ CRYSTAL MICRO BALANCE

机译:石英晶体微平衡在纳米结构表面上的跳跃-滴状冷凝特征

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The spontaneously jumping motion of condensed droplets by coalescence on superhydrophobic surfaces has been an active area of research due to its great potential for enhancing the condensation efficiency. Despite a considerable amount of microscopic observations, the interfacial wetting characterization during jumping-droplet condensation is still notably lacking. This work focuses on applying a novel acoustic sensor - quartz crystal microbalance (QCM), to characterize the interfacial wetting on nanostructured surfaces during jumping-droplet condensation. Copper oxide nanostructures were generated on the surface of QCM with a chemical etching method. Based on the geometry of the nanostructures, we modified a theoretical model to reveal the relationship between the frequency shift of the QCM and the wetting states of the surfaces. It was found that the QCM is extremely sensitive to the penetrated liquid in the structured surfaces. Then, the QCM with nanostructured surface was tested on a customed flow condensation setup. The dynamic interfacial wetting characteristics were quantified by the normalized frequency shift of the QCM. Combined with microscopic observation of the corresponding drop motion, we demonstrated that partial wetting (PW) droplets with an about 25% penetrated area underwent spontaneously jumping by coalescence. However, the PW droplets no longer jumped when the penetrated area exceeds 50% due to the stronger adhesion between liquid and the surface. It shows that the characterization of the penetrated liquid in microanostructures, which is very challenging for microscopic observation, can be easily carried out by this acoustic technique.
机译:由于在超疏水表面上聚结而引起的冷凝液滴的自发跳跃运动,因为它具有提高冷凝效率的巨大潜力,因此一直是研究的一个活跃领域。尽管有大量的显微镜观察,但仍明显缺乏跳跃液滴凝结过程中的界面润湿特性。这项工作的重点是应用新型声学传感器-石英晶体微天平(QCM),以表征跳跃液滴凝结过程中纳米结构表面的界面润湿。通过化学刻蚀方法在QCM表面生成了氧化铜纳米结构。基于纳米结构的几何形状,我们修改了理论模型以揭示QCM的频移与表面的润湿状态之间的关系。发现QCM对结构化表面中渗透的液体极为敏感。然后,在定制的流动冷凝装置上对具有纳米结构表面的QCM进行了测试。动态界面润湿特性通过QCM的归一化频移进行量化。结合相应的液滴运动的显微镜观察,我们证明具有约25%的渗透面积的部分润湿(PW)液滴通过聚结自发地跳跃。但是,由于液体和表面之间的附着力更强,当穿透面积超过50%时,PW液滴不再跳跃。结果表明,通过这种声学技术可以很容易地对微观/纳米结构中渗透的液体进行表征,这对于显微镜观察而言是非常具有挑战性的。

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