Zhao Liang, Gulati Paarth, Caballero Fernando, Kolvin Itamar, Adkins Raymond, Marchetti M Cristina, Dogic Zvonimir
Department of Physics, University of California, Santa Barbara, CA 93106.
Department of Physics, Brandeis University, Waltham, MA 02453.
Proc Natl Acad Sci U S A. 2024 Dec 17;121(51):e2410345121. doi: 10.1073/pnas.2410345121. Epub 2024 Dec 10.
We study the structure and dynamics of the interface separating a passive fluid from a microtubule-based active fluid. Turbulent-like active flows power giant interfacial fluctuations, which exhibit pronounced asymmetry between regions of positive and negative curvature. Experiments, numerical simulations, and theoretical arguments reveal how the interface breaks up the spatial symmetry of the fundamental bend instability to generate local vortical flows that lead to asymmetric interface fluctuations. The magnitude of interface deformations increases with activity: In the high activity limit, the interface self-folds invaginating passive droplets and generating a foam-like phase, where active fluid is perforated with passive droplets. These results demonstrate how active stresses control the structure, dynamics, and break-up of soft, deformable, and reconfigurable liquid-liquid interfaces.
我们研究了将被动流体与基于微管的活性流体分隔开的界面的结构和动力学。类似湍流的活性流驱动巨大的界面波动,这种波动在正曲率和负曲率区域之间表现出明显的不对称性。实验、数值模拟和理论论证揭示了界面如何打破基本弯曲不稳定性的空间对称性,以产生局部涡旋流,从而导致不对称的界面波动。界面变形的幅度随着活性的增加而增大:在高活性极限下,界面会自我折叠,使被动液滴内陷并产生类似泡沫的相,其中活性流体被被动液滴穿孔。这些结果表明了活性应力如何控制柔软、可变形和可重构的液-液界面的结构、动力学和破裂。