粗糙表面润湿性变化的多尺度方法优化

E. Chan, H. Fan, M. Yuen
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引用次数: 0

摘要

表面润湿性不仅受化学结构的影响,而且受表面几何结构的影响。提出了一种多尺度的粗糙表面润湿性研究方法。通过分子动力学计算,首次计算了偶氮苯的光开关反式和顺式异构体在不同底物上的润湿性。在分子模型中输入不同的化学结构和构型,得到平衡结构。然后估计接触角并将其输入到包含粗糙度因素的有限元模型中。将这些参数输入到FLUENT软件中,以估计不同粗糙表面上每个单独的反式和顺式结构的表面润湿性。模拟的润湿性结果与实验结果有较好的相关性。这种多尺度方法为研究分子尺度表面相互作用和微米尺度表面粗糙度对粗糙表面润湿性的综合影响提供了机会。它可以预测液体介质在粗糙表面上的接触角,这将是选择和优化材料和衬底表面结构以控制液/固界面亲疏水性的有力工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multiscale approach optimization on surface wettability change on rough surface
Surface wettability is known that is not only governed by chemical structure but also by the surface geometrical structure. A multiscale approach on rough surface wettability study was presented in this paper. The wettability study of photo-switched trans and cis isomers of azobenzene on different substrates was first calculated by molecular dynamics calculations. Different chemical structures and configurations were input into the molecular model to get equilibrated structures. Contact angle is then estimated and input into finite element model with roughness factor included. The parameters were input into the FLUENT software to estimate the respective surface wettability for each individual trans and cis configuration on different rough surface. The simulated wettability results were found to be in good correlation with experimental measures. This multiscale approach provides an opportunity to study the combined effects of surface interaction at molecular scale, and micron scale surface roughness, on the wettability of a rough surface. It enables the prediction of contact angle of liquid media on rough surfaces which will be a powerful tool in the selection and optimization of material and substrate surface structure to control the hydrophobicity/hydrophilicity at liquid/solid interface.
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