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The mechanism and universal scaling law of the contact line friction for the Cassie-state droplets on nanostructured ultrahydrophobic surfaces

机译:机理和普遍的标度律接触线Cassie-state摩擦水滴在纳米ultrahydrophobic表面

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摘要

Besides the Wenzel state, liquid droplets on micro/nanostructured surfaces can stay in the Cassie state and consequently exhibit intriguing characteristics such as a large contact angle, small contact angle hysteresis and exceptional mobility. Here we report molecular dynamics (MD) simulations of the wetting dynamics of Cassie-state water droplets on nanostructured ultrahydrophobic surfaces with an emphasis on the genesis of the contact line friction (CLF). From an ab initio perspective, CLF can be ascribed to the collective effect of solid-liquid retarding and viscous damping. Solid-liquid retarding is related to the work of adhesion, whereas viscous damping arises from the viscous force exerted on the liquid molecules within the three-phase (liquid/vapor/solid) contact zone. In this work, a universal scaling law is derived to generalize the CLF on nanostructured ultrahydrophobic surfaces. With the decreasing fraction of solid-liquid contact (i.e., the solid fraction), CLF for a Cassie-state droplet gets enhanced due to the fact that viscous damping is counter-intuitively intensified while solid-liquid retarding remains unchanged. Nevertheless, the overall friction between a Cassie-state droplet and the structured surface is indeed reduced since the air cushion formed in the interstices of the surface roughness underneath the Cassie-state droplet applies negligible resistance to the contact line. Our results have revealed the genesis of CLF from an ab initio perspective, demonstrated the effects of surface structures on a moving contact line and justified the critical role of CLF in the analysis of wetting-related situations.
机译:除了文策尔状态,液体滴微/纳米表面可以留在卡西状态,因此表现出有趣的大接触角等特点,小接触角滞后现象和异常流动性。润湿动力学的模拟在纳米Cassie-state水滴ultrahydrophobic表面强调《创世纪》的接触线摩擦(CLF)。从头开始的角度来看,可以归因于CLF固液制动的集体效应和粘滞阻尼。相关工作的附着力,而粘性阻尼的粘滞力液体分子在三相(液体/蒸气/固体)接触区。一个通用标度律推导归纳纳米ultrahydrophobic CLF表面。固液接触(即固体部分),CLF为Cassie-state液滴得到增强粘性阻尼的事实反直觉而加剧固液制动保持不变。然而,总体之间的摩擦Cassie-state液滴和结构化表面气垫形成以来确实减少了表面粗糙度的间隙下面Cassie-state滴适用接触线的微不足道的阻力。结果显示从一个CLF的起源从头开始的角度来看,证明了影响在一个移动的接触线的表面结构并合理CLF的至关重要的作用wetting-related情况的分析。

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