Istituto per le Applicazioni del Calcolo CNR, via dei Taurini 19, 00185, Rome, Italy.
Center for Life Nano Science@La Sapienza, Istituto Italiano di Tecnologia, 00161, Rome, Italy.
Nat Commun. 2023 Feb 25;14(1):1096. doi: 10.1038/s41467-023-36656-0.
Active fluid droplets are a class of soft materials exhibiting autonomous motion sustained by an energy supply. Such systems have been shown to capture motility regimes typical of biological cells and are ideal candidates as building-block for the fabrication of soft biomimetic materials of interest in pharmacology, tissue engineering and lab on chip devices. While their behavior is well established in unconstrained environments, much less is known about their dynamics under strong confinement. Here, we numerically study the physics of a droplet of active polar fluid migrating within a microchannel hosting a constriction with adhesive properties, and report evidence of a striking variety of dynamic regimes and morphological features, whose properties crucially depend upon droplet speed and elasticity, degree of confinement within the constriction and adhesiveness to the pore. Our results suggest that non-uniform adhesion forces are instrumental in enabling the crossing through narrow orifices, in contrast to larger gaps where a careful balance between speed and elasticity is sufficient to guarantee the transition. These observations may be useful for improving the design of artificial micro-swimmers, of interest in material science and pharmaceutics, and potentially for cell sorting in microfluidic devices.
活性液滴是一类软物质,它们通过能量供应来维持自主运动。这些系统已经被证明可以捕获典型的生物细胞运动状态,并且是制造在药理学、组织工程和芯片实验室设备中感兴趣的软仿生材料的理想候选物。虽然它们在不受约束的环境中的行为已经得到很好的确立,但在强约束下的动力学行为却知之甚少。在这里,我们通过数值研究了在具有粘附特性的微通道中迁移的活性极性液滴的物理特性,并报告了大量显著的动态状态和形态特征的证据,这些特性主要取决于液滴的速度和弹性、在收缩处的限制程度以及与孔的粘附性。我们的研究结果表明,非均匀的粘附力对于通过狭窄的孔口至关重要,而在较大的间隙中,速度和弹性之间的精细平衡足以保证过渡。这些观察结果可能有助于改进人工微泳者的设计,这在材料科学和药物学中是非常有趣的,并且可能有助于微流控设备中的细胞分选。