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通过界面张力控制毛细管中受限液滴的间距,以按需合并。

Controlling the distance of highly confined droplets in a capillary by interfacial tension for merging on-demand.

机构信息

Dipartimento di Fisica e Astronomia G. Galilei, Università di Padova, via Marzolo 8, 35131 Padova, Italy.

出版信息

Lab Chip. 2018 Dec 18;19(1):136-146. doi: 10.1039/c8lc01182f.

Abstract

Droplet microfluidics is a powerful technology that finds many applications in chemistry and biomedicine. Among different configurations, droplets confined in a capillary (or plugs) present a number of advantages: they allow positional identification and simplify the integration of complex multi-steps protocols. However, these protocols rely on the control of droplet speed, which is affected by a complex and still debated interplay of various physico-chemical parameters like droplet length, viscosity ratio between droplets and carrier fluid, flow rate and interfacial tension. We present here a systematic investigation of the droplet speed as a function of their length and interfacial tension, and propose a novel, simple and robust methodology to control the relative distance between consecutive droplets flowing in microfluidic channels through the addition of surfactants either into the dispersed and/or into the continuous phases. As a proof of concept application, we present the possibility to accurately trigger in space and time the merging of two confined droplets flowing in a uniform cross-section circular capillary. This approach is further validated by monitoring a conventional enzymatic reaction used to quantify the concentration of H2O2 in a biological sample, showing its potentialities in both continuous and stopped assay methods.

摘要

液滴微流控技术是一种强大的技术,在化学和生物医学领域有广泛的应用。在不同的配置中,被限制在毛细管中的液滴(或塞子)具有许多优势:它们允许位置识别,并简化了复杂的多步骤方案的集成。然而,这些方案依赖于液滴速度的控制,而液滴速度受到多种物理化学参数的复杂相互作用的影响,例如液滴长度、液滴和载体流体之间的粘度比、流速和界面张力。我们在这里系统地研究了液滴速度与其长度和界面张力的关系,并提出了一种新颖、简单和强大的方法,通过在分散相和/或连续相添加表面活性剂来控制在微流道中流动的连续液滴之间的相对距离。作为概念验证应用,我们展示了在空间和时间上精确触发两个在圆形毛细管中流动的受限液滴合并的可能性。通过监测用于定量生物样品中 H2O2 浓度的常规酶反应,进一步验证了这种方法,显示了其在连续和停止测定方法中的潜力。

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