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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Simple-to-Apply Wetting Model to Predict Thermodynamically Stable and Metastable Contact Angles on Textured/Rough/Patterned Surfaces
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Simple-to-Apply Wetting Model to Predict Thermodynamically Stable and Metastable Contact Angles on Textured/Rough/Patterned Surfaces

机译:简单施加的润湿模型,以预测纹理/粗糙/图案化表面上的热力学稳定和稳定的接触角

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摘要

Rough/patterned/textured surfaces with nano/microcavities that broaden below the surface known as "re-entrants"-can be omniphobic (macroscopic contact angle greater than 90 for both water and oils). The existing theoretical models that explain the effects of texture on wetting are complex and do not provide a simple procedure for predicting the thermodynamically stable and metastable states and their corresponding contact angles (for example, wetting states that involve partially filled cavities). Here, we develop a simple-to-apply wetting model that allows for (1) predicting a priori the wetting state (partially or fully filled) of the cavities both under and outside the liquid droplet and the corresponding macroscopic contact angles on any type of textured surface; (2) determining the conditions under which metastable states exist; and (3) engineering specific nano/microtextures that yield any desired macroscopic contact angle, theta(v) for a given intrinsic contact angle theta(0). Subsequently, we experimentally demonstrate how one can use the model to predict the metastable and the thermodynamically stable contact angles on nondeformable textured surfaces consisting of arrays of axisymmetric cavities/protrusions. In this model, we do not consider the effects of gravitational forces, Laplace pressure of the droplet, line tension, droplet impact velocity, and quantitative aspects of contact angle hysteresis. Nonetheless, the model is suitable for accurately predicting the contact angles of macroscopic droplets (droplet volume similar to 1 mu L and base diameters <2 mm), which is of immense relevance in engineering. In the experimental section we also discuss the suitability of the model to be extended in order to include the effects of contact angle hysteresis on the macroscopic apparent contact angle on textured surfaces. Controlling these macroscopic contact angles, whether higher or lower than the intrinsic angle, theta(0), is desirable for many applications including nonwetting, self-cleaning, and antifouling surfaces and for completely wetting/spreading applications, such as creams, cosmetics, and lubricant fluids.
机译:粗糙/图案/纹理的表面具有纳米/微腔,可在被称为“重新进入剂”的表面下方的纳米/微腔 - 可以是Omniphic(宏观接触角大于90的水和油)。说明纹理对润湿影响的现有理论模型是复杂的,并且不提供用于预测热力学稳定和稳定状态的简单方法及其相应的接触角(例如,涉及部分填充腔的润湿状态)。在这里,我们开发了一种简单的润湿模型,其允许(1)预测液滴下外和外部的腔体(部分或完全填充)腔室内和任何类型的宏观接触角纹理表面; (2)确定存在亚稳态存在的条件; (3)工程特异性纳米/微横向,其产生任何所需的宏观接触角,θ(v)给定的内在接触角θ(0)。随后,我们通过实验证明了人们如何使用模型来预测由轴对称腔/突起的阵列组成的Nondeformable纹理表面上的亚稳态和热力学稳定的接触角。在该模型中,我们不考虑引力力,液滴,线张力,液滴冲击速度和接触角滞后的定量方面的影响。尽管如此,该模型适用于精确地预测宏观液滴的接触角(液滴体积与1μl和基准直径<2mm的液滴和基准2mm)具有巨大的相关性。在实验部分中,我们还讨论了延长了模型的适用性,以便包括接触角滞后对纹理表面上的宏观表观接触角的影响。控制这些宏观接触角,无论是否高于内在角度,θ(0)都是期望的许多应用,包括非润湿,自清洁和防污表面以及完全润湿/散布应用,例如乳膏,化妆品和润滑油。

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