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Effect of topography on the wetting of nanoscale patterns: experimental and modeling studies

机译:地形效应在纳米尺度的润湿模式:实验和建模研究

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摘要

We investigated the influence of nanoscale pattern shapes, contours, and surface chemistry on wetting behavior using a combination of experimental and modeling approaches. Among the investigated topographical shapes, re-entrant geometries showed superior performance owing to their ability to restrain the liquid-air interface in accordance with Gibbs criteria. The wetting state is also controlled by the surface texture in addition to the surface chemistry. Topographies with smaller intrinsic angles are better able to support the liquid droplet. Based on these observations, two geometrical relationships for designing superhydrophobic patterns exhibiting the Cassie-Baxter state are proposed. A detailed analysis of the simulation results showed the presence of viscous forces during the initial transient phase of the droplet interaction with the solid surface even at negligible normal velocity, which was verified experimentally using a high-speed imaging technique. During this transient phase, for a polystyrene surface, the liquid front was observed to be moving with a radial velocity of 0.4 m s~(-1), which gradually decreased to almost zero after 35 ms. We observed that the viscous energy dissipation density is influenced by the surface material and topography and the wetting state. The viscous energy dissipation density is minimal in the case of the Cassie-Baxter state, while it becomes quite significant for the Wenzel state. The viscous effects are reduced for topographies with smooth geometries and surfaces with high slip length.
机译:我们研究了纳米尺度的影响模式形状、轮廓和表面化学润湿行为使用的组合实验和建模方法。研究地形形状,再进入的几何图形显示由于优越的性能他们抑制液态空气的能力根据吉布斯标准接口。也控制的表面润湿状态纹理除了表面化学。内在角度较小的地形能够更好地支持液体滴。在这些观察,两个几何设计超疏水的关系模式展示Cassie-Baxter状态建议。结果表明粘性力的存在在最初的瞬态阶段的液滴甚至与固体表面的交互微不足道的正常速度,验证使用高速成像实验技术。聚苯乙烯表面,液体的面前观察到的径向速度移动0.4年代~(1)逐渐下降到几乎零后35女士。能量耗散密度的影响表面材料和地形和润湿状态。最小的Cassie-Baxter状态,文策尔虽然相当明显状态。地形与光滑的几何形状和表面高滑移长度。

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