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EVAPORATION-INDUCED CASSIE DROPLETS ON SUPERHYDROPHILIC MICROSTRUCTURED SURFACES

机译:超硫基微观结构表面上的蒸发诱导的卡西液滴

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A droplet deposited on a rough, lyophilic surface satisfying the imbibition condition, results in complete wetting. However, in this work, we demonstrate that this behavior can be altered by superheating the substrate such that droplets can reside in a non-wetting Cassie state due to evaporation. Photolithography and deep reactive ion etching were used to fabricate a well-defined silicon micropillar array with diameter, height, and center-to-center spacings of 5.3, 21.7 and 27.5 μm, respectively. Water droplets placed on this microstructured surface at room temperature demonstrated superhydrophilic behavior with liquid filling the voids between pillars resulting in a vanishing contact angle. However, when the microstructured surface was superheated above a critical value, the superhydrophilicity was lost and non-wetting Cassie droplets were formed. The superheat required to deposit a Cassie droplet (>75°C) was found to be significantly higher than that required to sustain an already deposited Cassie droplet (<35°C). Interestingly, the superheat required to sustain a Cassie droplet after the initial deposition was found to decrease with the square of the droplet radius. These observations where an inherently superhydrophilic structured surface turns into superhydrophobic at nominal superheats has implications for phase change based heat transfer applications where the loss of contact between the substrate and the heat transfer fluid can be detrimental to the device performance.
机译:沉积在满足条件渗吸,导致完全润湿粗糙,亲液面的液滴。然而,在这项工作中,我们证明了这种行为可以通过过热的衬底,使得液滴可以驻留在非润湿卡西状态由于蒸发而改变。光刻和深反应离子蚀刻被用来制造具有直径,高度,和5.3,分别21.7和27.5微米,中心至中心的间距定义良好的硅微柱阵列。在室温下放置在该微结构化表面的水滴证明超亲水行为与液体灌装导致消失接触角柱之间的空隙。然而,当微结构化表面被高于临界值的过热,超级亲水性丢失和形成非润湿卡西液滴。过热需要来沉积液滴卡西(> 75℃)被发现比维持一个已沉积卡西液滴需要更高的是显著(<35℃)。有趣的是,过热需要维持卡西液滴初始淀积发现与液滴半径的平方减少之后。这些观察结果,其中固有的超亲水化结构化表面匝到超疏水在标称过热度具有用于基于相变传热应用,其中所述基板和所述传热流体之间的接触的损失可能是有害的器件性能产生影响。

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