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Microfluidic Chamber Design for Controlled Droplet Expansion and Coalescence

机译:微流体腔设计可控的液滴膨胀和聚结

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摘要

The defined formation and expansion of droplets are essential operations for droplet-based screening assays. The volumetric expansion of droplets causes a dilution of the ingredients. Dilution is required for the generation of concentration graduation which is mandatory for many different assay protocols. Here, we describe the design of a microfluidic operation unit based on a bypassed chamber and its operation modes. The different operation modes enable the defined formation of sub-µL droplets on the one hand and the expansion of low nL to sub-µL droplets by controlled coalescence on the other. In this way the chamber acts as fluidic interface between two fluidic network parts dimensioned for different droplet volumes. Hence, channel confined droplets of about 30–40 nL from the first network part were expanded to cannel confined droplets of about 500 to about 2500 nL in the second network part. Four different operation modes were realized: (a) flow rate independent droplet formation in a self-controlled way caused by the bypassed chamber design, (b) single droplet expansion mode, (c) multiple droplet expansion mode, and (d) multiple droplet coalescence mode. The last mode was used for the automated coalescence of 12 droplets of about 40 nL volume to produce a highly ordered output sequence with individual droplet volumes of about 500 nL volume. The experimental investigation confirmed a high tolerance of the developed chamber against the variation of key parameters of the dispersed-phase like salt content, pH value and fluid viscosity. The presented fluidic chamber provides a solution for the problem of bridging different droplet volumes in a fluidic network.
机译:液滴的确定的形成和扩展是基于液滴的筛选测定的基本操作。液滴的体积膨胀引起成分的稀释。浓度梯度的产生需要稀释,这对于许多不同的测定规程都是必需的。在这里,我们描述了基于旁路腔室的微流体操作单元的设计及其操作模式。不同的操作模式一方面可以实现亚µL小滴的定义形成,另一方面可以通过受控的聚结将低nL扩展为亚µL小滴。这样,腔室充当两个流体网络部分之间的流体接口,两个流体网络部分的尺寸针对不同的液滴体积而定。因此,从第一网状部分流出的约30–40 nL的通道受限液滴在第二网状部分膨胀成约500至2500 nL的漏斗状受限液滴。实现了四种不同的操作模式:(a)由旁路腔室设计引起的以流量自控的独立液滴形成方式;(b)单液滴膨胀模式;(c)多液滴膨胀模式;(d)多液滴合并模式。最后一种模式用于自动合并约40 nL体积的12个液滴,以产生具有约500 nL体积的单个液滴体积的高度有序的输出序列。实验研究证实,所开发的腔室对分散相的关键参数(如盐含量,pH值和流体粘度)的变化具有较高的耐受性。提出的流体腔室为解决在流体网络中桥接不同液滴体积的问题提供了解决方案。

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