Théry Albane, Chamolly Alexander, Lauga Eric
Department of Applied Mathematics and Theoretical Physics, University of Cambridge, Cambridge CB3 0WA, United Kingdom.
Department of Mathematics, University of Pennsylvania, Philadelphia, Pennsylvania 19104, USA.
Phys Rev Lett. 2024 Mar 8;132(10):108301. doi: 10.1103/PhysRevLett.132.108301.
Biased locomotion is a common feature of microorganisms, but little is known about its impact on self-organization. Inspired by recent experiments showing a transition to large-scale flows, we study theoretically the dynamics of magnetotactic bacteria confined to a drop. We reveal two symmetry-breaking mechanisms (one local chiral and one global achiral) leading to self-organization into global vortices and a net torque exerted on the drop. The collective behavior is ultimately controlled by the swimmers' microscopic chirality and, strikingly, the system can exhibit oscillations and memorylike features.
有偏向的运动是微生物的一个常见特征,但人们对其对自组织的影响知之甚少。受最近显示向大规模流动转变的实验启发,我们从理论上研究了局限于液滴中的趋磁细菌的动力学。我们揭示了两种对称性破缺机制(一种是局部手性的,一种是全局非手性的),它们导致自组织成全局涡旋,并对液滴施加净扭矩。集体行为最终由游动者的微观手性控制,而且引人注目的是,该系统可以表现出振荡和类似记忆的特征。