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竞争生长诱导的表面纳米液滴的自发形成。

Spontaneous Pattern Formation of Surface Nanodroplets from Competitive Growth.

机构信息

Soft Matter and Interfaces Group, School of Civil, Environmental and Chemical Engineering, RMIT University , Melbourne, VIC 3001, Australia.

Physics of Fluids Group, Department of Applied Physics and J. M. Burgers Centre for Fluid Dynamics, University of Twente , P.O. Box 217, 7500 AE Enschede, The Netherlands.

出版信息

ACS Nano. 2015 Dec 22;9(12):11916-23. doi: 10.1021/acsnano.5b04436. Epub 2015 Nov 3.

Abstract

Nanoscale droplets on a substrate are of great interest because of their relevance for droplet-based technologies for light manipulation, lab-on-chip devices, miniaturized reactors, encapsulation, and many others. In this work, we establish a basic principle for symmetrical arrangements of surface nanodroplets during their growth out of oversaturated solution established through solvent exchange, which takes place under simple and controlled flow conditions. In our model system, nanodroplets nucleate at the rim of spherical cap microstructures on a substrate, due to a pulse of oversaturation supplied by a solvent exchange process. We find that, while growing at the rim of the microcap, the nanodroplets self-organize into highly symmetric arrangements, with respect to position, size, and mutual distance. The angle between the neighboring droplets is 4 times the ratio between the base radii of the droplets and the spherical caps. We show and explain how the nanodroplets acquire the symmetrical spatial arrangement during their competitive growth and why and how the competition enhances the overall growth rate of the nucleated nanodroplets. This mechanism behind the nanodroplet self-organization promises a simple approach to control the location of droplets with a volume down to attoliters.

摘要

基底上的纳米液滴因其在基于液滴的光操控技术、芯片实验室设备、微型化反应器、封装等方面的重要应用而备受关注。在这项工作中,我们通过溶剂交换建立了一个基本原理,即在简单且可控的流动条件下,溶剂交换过程提供过饱和度脉冲,从而在过饱和溶液中从基底上的球形帽微结构生长出表面纳米液滴时,实现表面纳米液滴的对称排列。在我们的模型体系中,纳米液滴在微帽的边缘形核,这是由于溶剂交换过程提供了过饱和度脉冲。我们发现,在微帽的边缘生长时,纳米液滴会根据位置、大小和相互距离形成高度对称的排列。相邻液滴之间的夹角是液滴和球形帽基底半径比的 4 倍。我们展示并解释了纳米液滴在竞争生长过程中如何获得对称的空间排列,以及竞争如何增强成核纳米液滴的整体生长速率。这种纳米液滴自组织的机制有望为控制具有皮升体积的液滴位置提供一种简单的方法。

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