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微流控共流中液滴在流体-流体界面的迁移和扩散。

Migration and Spreading of Droplets across a Fluid-Fluid Interface in Microfluidic Coflow.

机构信息

Fluid Systems Laboratory, Department of Mechanical Engineering, Indian Institute of Technology Madras, Chennai, 600036 Tamilnadu, India.

Waterloo Institute for Nanotechnology, Department of Mechanical & Mechatronics Engineering, University of Waterloo, Waterloo, N2L 3G1 Ontario, Canada.

出版信息

Langmuir. 2022 Aug 9;38(31):9660-9668. doi: 10.1021/acs.langmuir.2c01260. Epub 2022 Jul 25.

Abstract

Interfacial migration of droplets in microfluidic confinements has significant relevance in cell biology and biochemical assays. So far, studies on passive interfacial migration of droplets are limited to co-flow interfaces having small interfacial tension (IFT ∼ 1 mN/m). Here, we elucidate the migration and spreading of droplets (SiO-1000, SiO-100, FC40, and castor oil as phase 3, P3) across the interface between a pair of coflowing streams (PEG as P1, SiO-100, SiO-20, FC40, and olive oil as P2) having large IFT (∼10 mN/m), with the three different phases immiscible. Interfacial migration involving interfaces of large IFT is facilitated by confining droplets between the channel wall and coflow interface. We find that contact between droplets and the coflow interface is governed by the confinement ratio (i.e., the ratio of drop size to stream width) and the ratio of the capillary numbers of the coflowing streams. Depending on the sign of the spreading parameter () of the co-flowing phases, droplet migration or spreading at the interface is observed. While interfacial migration is observed for < 0 and > 0, droplet spreading is observed for < 0 and < 0, where and are P1 and P2 side spreading parameters, respectively. We investigate the droplet migration dynamics and time evolution of the contact line and the interface. Our results show that the speed of interfacial migration increases with increasing spreading parameter contrast between the coflowing phases. In the droplet spreading case, we experimentally study the variation in the spreading length with time, revealing three distinct regimes in good agreement with predictions from analytical scaling. Our study explores the interfacial transport of droplets involving high IFT interfaces, advancing the fundamental understanding of the topic that may find relevance in droplet microfluidics.

摘要

液滴在微流控受限环境中的界面迁移在细胞生物学和生化分析中具有重要意义。到目前为止,关于液滴的被动界面迁移的研究仅限于具有小界面张力(IFT∼1 mN/m)的共流界面。在这里,我们阐明了具有大 IFT(∼10 mN/m)的共流界面之间跨越界面迁移和扩展的液滴(SiO-1000、SiO-100、FC40 和蓖麻油作为相 3,P3),其中三个不同的相不混溶。界面迁移涉及大 IFT 的界面,通过将液滴限制在通道壁和共流界面之间来促进。我们发现,液滴与共流界面之间的接触由约束比(即液滴尺寸与流宽之比)和共流流的毛细数之比控制。根据共流相的扩展参数()的符号,观察到界面处的液滴迁移或扩展。当 < 0 和 > 0 时,观察到界面迁移,而当 < 0 和 < 0 时,观察到液滴扩展,其中 和 分别是共流相的 P1 和 P2 侧扩展参数。我们研究了液滴迁移动力学以及接触线和界面的时间演化。我们的结果表明,界面迁移的速度随着共流相之间扩展参数对比度的增加而增加。在液滴扩展的情况下,我们实验研究了扩展长度随时间的变化,揭示了三个与分析缩放预测一致的明显阶段。我们的研究探索了涉及高 IFT 界面的液滴界面输运,推进了对该主题的基本理解,这可能在液滴微流控中具有相关性。

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