Department of Mechanical Engineering, Binghamton University, The State University of New York, Binghamton, NY 13902, USA.
J Colloid Interface Sci. 2019 Mar 22;540:602-611. doi: 10.1016/j.jcis.2019.01.046. Epub 2019 Jan 14.
Capillary interactions play an important role in directing colloidal assembly on fluid interfaces. Interface curvature is expected to influence not only individual particle migration on interfaces but also capillary forces between nearby particles. In drying droplets, we hypothesize that the assembly and deposition of particles bound to droplet surface are controlled by the interplay between capillary effects and evaporation-driven flow.
Using lattice Boltzmann-Brownian dynamics (LB-BD) simulations, we modeled large-scale assembly of nanoparticles on fluid interfaces that have complex geometries and investigate the subsequent deposition upon complete evaporation. A systematic study was performed for geometrically-controlled sessile droplets whose surfaces exhibit varying curvature fields.
The simulations show that the particle dynamics on nonuniformly curved interfaces are anisotropic and governed by particle-pair capillary interactions and curvature-induced capillary migration. A theoretical model was developed to predict the capillarity-induced assembly. Using the curved surface as a template, drying droplets with surface-bound particles deposit distinct patterns as a result of the competition between the capillary effects and evaporation-induced convection. These findings could provide new opportunities in the directed assembly and deposition of colloidal particles with potential applications in fabricating functional materials from nanoscale building blocks.
毛细相互作用在指导胶体在流体界面上的组装中起着重要作用。界面曲率不仅预计会影响界面上单个颗粒的迁移,还会影响附近颗粒之间的毛细力。在干燥的液滴中,我们假设与液滴表面结合的颗粒的组装和沉积是由毛细效应和蒸发驱动的流动之间的相互作用控制的。
使用格子玻尔兹曼-布朗动力学(LB-BD)模拟,我们模拟了在具有复杂几何形状的流体界面上的纳米颗粒的大规模组装,并研究了完全蒸发后的后续沉积。对具有不同曲率场的几何控制的固着液滴进行了系统研究。
模拟表明,非均匀弯曲界面上的颗粒动力学具有各向异性,由颗粒对毛细相互作用和曲率诱导的毛细迁移控制。开发了一个理论模型来预测毛细诱导的组装。利用曲面作为模板,由于毛细效应和蒸发诱导对流之间的竞争,表面带有颗粒的干燥液滴会沉积出不同的图案。这些发现为胶体颗粒的定向组装和沉积提供了新的机会,有望在从纳米级构建块制造功能材料方面得到应用。