Hosaka Yuto, Andelman David, Komura Shigeyuki
Max Planck Institute for Dynamics and Self-Organization (MPI DS), Am Faßberg 17, 37077, Göttingen, Germany.
School of Physics and Astronomy, Tel Aviv University, Ramat Aviv, 69978, Tel Aviv, Israel.
Eur Phys J E Soft Matter. 2023 Mar 22;46(3):18. doi: 10.1140/epje/s10189-023-00265-y.
We discuss the lateral dynamics of two active force dipoles, which interact with each other via hydrodynamic interactions in a thin fluid layer that is active and chiral. The fluid layer is modeled as a two-dimensional (2D) compressible fluid with an odd viscosity, while the force dipole (representing an active protein or enzyme) induces a dipolar flow. Taking into account the momentum decay in the 2D fluid, we obtain analytically the mobility tensor that depends on the odd viscosity and includes nonreciprocal hydrodynamic interactions. We find that the particle pair shows spiral behavior due to the transverse flow induced by the odd viscosity. When the magnitude of the odd viscosity is large as compared with the shear viscosity, two types of oscillatory behaviors are seen. One of them can be understood as arising from closed orbits in dynamical systems, and its circular trajectories are determined by the ratio between the magnitude of the odd viscosity and the force dipole. In addition, the phase diagrams of the particle dipolar angles are obtained numerically. Our findings reveal that the nonreciprocal response leads to complex dynamics of active particles embedded in an active fluid with odd viscosity.
我们讨论了两个活性力偶极子的横向动力学,它们在一个具有活性和手性的薄流体层中通过流体动力相互作用相互作用。流体层被建模为具有奇粘性的二维(2D)可压缩流体,而力偶极子(代表活性蛋白质或酶)诱导偶极流。考虑到二维流体中的动量衰减,我们解析地得到了依赖于奇粘性并包含非互易流体动力相互作用的迁移率张量。我们发现,由于奇粘性引起的横向流,粒子对呈现螺旋行为。当奇粘性的大小与剪切粘性相比很大时,会出现两种振荡行为。其中一种可以理解为源于动力系统中的封闭轨道,其圆形轨迹由奇粘性大小与力偶极子之间的比率决定。此外,通过数值方法得到了粒子偶极角的相图。我们的研究结果表明,非互易响应导致了嵌入具有奇粘性的活性流体中的活性粒子的复杂动力学。