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Superhydrophobic behavior of a microtextured surface: a thermodynamic approach

机译:微纹理表面的超疏水行为:热力学方法

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A pillar microtexture, which has been intensively investigated in experiments, is chosen as a typical example and thermodynamically analyzed in detail. To gain a comprehensive insight into superhydrophobic behavior, the roles of pillar height, width and spacing (or roughness and solid fraction), intrinsic CA, drop size, and vibrational energy as well as fractal structure and formation of liquid films are systematically investigated. Solid surface fraction is shown by f. Free energy (FE) and free energy barrier (FEB) are calculated using a simple and robust 2D model. Based on the calculations of FE and FEB, various CAs, including apparent, equilibrium (stable), advancing and receding CAs, and CA hysteresis (CAH) can be determined. Especially, the design of practical surephydrophobic surfaces is emphasized in connection with the transition between noncomposite and composite states; a criterion for judging such transition is proposed. The theoretical results are consistent with Wenzel's and Cassie's equations and experimental observations. Furthermore, based on these results and the proposed criterion, some general principles to achieve superhydrophobic performance are suggested.
机译:选择了经过实验研究的支柱微纹理作为典型示例,并对其进行了热力学详细分析。为了全面了解超疏水行为,系统地研究了柱高,宽度和间距(或粗糙度和固体分数),固有CA,液滴尺寸和振动能以及分形结构和液膜形成的作用。固体表面分数由f表示。使用简单而强大的2D模型来计算自由能(FE)和自由能垒(FEB)。基于FE和FEB的计算,可以确定各种CA,包括视在,平衡(稳定),前进和后退CA以及CA滞后(CAH)。特别是,结合非复合态和复合态之间的过渡,着重强调实用的疏水表面的设计。提出了判断这种过渡的标准。理论结果与Wenzel和Cassie方程以及实验观察结果一致。此外,基于这些结果和提出的标准,提出了实现超疏水性能的一些一般原则。

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