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由力偶极子负载的流体界面:迈向活性物质驱动的微流体流动

Fluid interfaces laden by force dipoles: towards active matter-driven microfluidic flows.

作者信息

Patel Kuntal, Stark Holger

机构信息

Institut für Theoretische Physik, Technische Universität Berlin, Hardenbergstr. 36, 10623 Berlin, Germany.

出版信息

Soft Matter. 2023 Mar 22;19(12):2241-2253. doi: 10.1039/d3sm00043e.

Abstract

In recent years, nonlinear microfluidics in combination with lab-on-a-chip devices has opened a new avenue for chemical and biomedical applications such as droplet formation and cell sorting. In this article, we integrate ideas from active matter into a microfluidic setting, where two fluid layers with identical densities but different viscosities flow through a microfluidic channel. Most importantly, the fluid interface is laden with active particles that act with dipolar forces on the adjacent fluids and thereby generate flows. We perform lattice-Boltzmann simulations and combine them with phase field dynamics of the interface and an advection-diffusion equation for the density of active particles. We show that only contractile force dipoles can destabilize the flat fluid interface. It develops a viscous finger from which droplets break up. For interfaces with non-zero surface tension, a critical value of activity equal to the surface tension is necessary to trigger the instability. Since activity depends on the density of force dipoles, the interface can develop steady deformation. Lastly, we demonstrate how to control droplet formation using switchable activity.

摘要

近年来,非线性微流体与芯片实验室设备相结合,为诸如液滴形成和细胞分选等化学和生物医学应用开辟了一条新途径。在本文中,我们将活性物质的概念融入微流体环境中,在该环境中,具有相同密度但不同粘度的两层流体流经一个微流体通道。最重要的是,流体界面上负载有活性粒子,这些粒子通过偶极力作用于相邻流体,从而产生流动。我们进行格子玻尔兹曼模拟,并将其与界面的相场动力学以及活性粒子密度的平流扩散方程相结合。我们表明,只有收缩力偶极子才能使平坦的流体界面失稳。它会形成一个粘性指状物,液滴从该指状物上破裂。对于具有非零表面张力的界面,需要一个等于表面张力的临界活性值来触发不稳定性。由于活性取决于力偶极子的密度,界面可以产生稳定的变形。最后,我们展示了如何使用可切换的活性来控制液滴的形成。

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