论文标题
限制下极性流体液滴的形状和动态状态
Shapes and dynamic regimes of a polar active fluid droplet under confinement
论文作者
论文摘要
活跃的液滴是由微流体工具液体分散构建的,并显示自前线运动。这些系统对模仿生物学现象特别感兴趣,例如细胞运动的某些方面和细菌菌落的集体行为,以及基于液滴基于生物学启发的材料(例如工程组织)的设计。越来越多的证据表明,几何限制对其形态和运动性至关重要,但是驱动物理机制仍然很少了解。在这里,我们研究了活动对含有各种大小微流体通道内的收缩极流体的液滴的影响。我们发现了令人惊讶的形状和动态状态,其机制受到收缩应力,液滴弹性和微通道宽度之间的微妙相互作用的调节。它们的范围从蠕虫状和细胞状的液滴显示出较宽的通道内的振荡行为到子弹形的液滴,在较窄的缝隙中表现出直线运动。我们的发现支持几何限制可以提供可行的策略来控制和预测活性液滴的推进方向的观点。在生物细胞或合成活性物质中寻找这些运动模式的类似物将很感兴趣。
Active droplets are artificial microswimmers built from a liquid dispersion by microfluidic tools and showing self-propelled motion. These systems hold particular interest for mimicking biological phenomena, such as some aspects of cell locomotion and collective behaviors of bacterial colonies, as well as for the design of droplet-based biologically inspired materials, such as engineered tissues. Growing evidence suggests that geometrical confinement crucially affects their morphology and motility, but the driving physical mechanisms are still poorly understood. Here we study the effect of activity on a droplet containing a contractile polar fluid confined within microfluidic channels of various sizes. We find a surprising wealth of shapes and dynamic regimes, whose mechanics is regulated by a subtle interplay between contractile stress, droplet elasticity and microchannel width. They range from worm-like and cell-like shaped droplets displaying an oscillating behavior within wider channels to bullet-shaped droplets exhibiting rectilinear motion in narrower slits. Our findings support the view that geometrical confinement can provide a viable strategy to control and predict the propulsion direction of active droplets. It would be of interest to look for analogues of these motility modes in biological cells or in synthetic active matter.