Department of Mechanical Engineering, University of Alberta, Edmonton, Alberta, Canada.
Langmuir. 2011 Oct 18;27(20):12472-85. doi: 10.1021/la202759j. Epub 2011 Sep 22.
A numerical model for thin liquid film (<100 nm) drainage in the presence of an external electric field is developed. Long-wave theory is applied to approximate and simplify the governing equations. A spatiotemporal film morphology evolution equation thus obtained is then solved using a combination of finite difference to resolve the spatial dimensions and an adaptive time step ODE solver for the temporal propagation. The effect of fluid properties, namely, viscosity and surface tension, on the film drainage time is observed for a homogeneous electric field, which leads to random dewetting spots. Electrically heterogeneous fields, achieved by modeling electrodes with various periodic patterns, are explored to identify their effect on the drainage time and behavior. Finally, the chemical heterogeneity of the substrate is coupled with the periodic electric heterogeneity to understand the implications of combined heterogeneity. It is observed that the introduction of any heterogeneity results in faster drainage of the film when compared to that of the homogeneous field. In all cases, the thin film is drained, leaving submicrometer-scale structures at the interface. Well-controlled surface patterns are found on the application of periodic heterogeneity. This study effectively demonstrates the immense potential of electrically induced thin film drainage as a means for faster de-emulsification and for the creation of ordered submicrometer-scale surface patterns on soft materials.
建立了存在外电场时薄液膜(<100nm)排液的数值模型。长波理论用于近似和简化控制方程。然后,使用有限差分解决空间维度,自适应时间步长 ODE 求解器解决时间传播,从而得到时空膜形态演化方程。观察到均匀电场中流体性质(即粘度和表面张力)对膜排液时间的影响,导致随机去湿点。通过对具有各种周期性图案的电极进行建模来探索电非均匀场,以确定它们对排水时间和行为的影响。最后,将基底的化学非均质性与周期性电非均质性相结合,以了解组合非均质性的影响。结果表明,与均匀场相比,任何非均质性的引入都会导致薄膜更快地排出。在所有情况下,薄膜都会被排干,在界面处留下亚微米级结构。在周期性非均质性的应用中发现了很好控制的表面图案。这项研究有效地证明了电诱导薄液膜排水作为更快脱乳和在软材料上创建有序亚微米级表面图案的手段具有巨大的潜力。