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Monte Carlo computer simulations and electron microscopy of colloidal cluster formation via emulsion droplet evaporation.

机译:通过乳液液滴蒸发形成胶体簇的蒙特卡洛计算机模拟和电子显微镜。

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摘要

We consider a theoretical model for a binary mixture of colloidal particles and spherical emulsion droplets. The hard sphere colloids interact via additional short-ranged attraction and long-ranged repulsion. The droplet-colloid interaction is an attractive well at the droplet surface, which induces the Pickering effect. The droplet-droplet interaction is a hard-core interaction. The droplets shrink in time, which models the evaporation of the dispersed (oil) phase, and we use Monte Carlo simulations for the dynamics. In the experiments, polystyrene particles were assembled using toluene droplets as templates. The arrangement of the particles on the surface of the droplets was analyzed with cryogenic field emission scanning electron microscopy. Before evaporation of the oil, the particle distribution on the droplet surface was found to be disordered in experiments, and the simulations reproduce this effect. After complete evaporation, ordered colloidal clusters are formed that are stable against thermal fluctuations. Both in the simulations and with field emission scanning electron microscopy, we find stable packings that range from doublets, triplets, and tetrahedra to complex polyhedra of colloids. The simulated cluster structures and size distribution agree well with the experimental results. We also simulate hierarchical assembly in a mixture of tetrahedral clusters and droplets, and find supercluster structures with morphologies that are more complex than those of clusters of single particles.
机译:我们考虑了胶体颗粒和球形乳液液滴的二元混合物的理论模型。硬球体胶体通过额外的短程吸引力和长程排斥力相互作用。液滴与胶体之间的相互作用在液滴表面很吸引人,从而引起了Pickering效应。液滴-液滴相互作用是硬核相互作用。液滴随时间收缩,从而模拟了分散相(油)的蒸发,我们使用蒙特卡洛模拟进行动力学分析。在实验中,使用甲苯液滴作为模板组装聚苯乙烯颗粒。用低温场发射扫描电子显微镜分析了液滴在液滴表面上的排列。在蒸发油之前,在实验中发现液滴表面的颗粒分布是无序的,而模拟则重现了这种效果。完全蒸发后,形成有序的胶体簇,这些簇对热波动稳定。在仿真和场发射扫描电子显微镜下,我们都发现了稳定的填充物,其范围从双峰,三重态和四面体到胶体的复杂多面体。模拟的团簇结构和尺寸分布与实验结果吻合良好。我们还模拟了四面体簇和液滴的混合物中的分层装配,并发现了具有比单个颗粒簇更复杂的形态的超簇结构。

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