Mode instabilities and dynamic patterns in a colony of self-propelled surfactant particles covering a thin liquid layer
arXiv:1601.02061 · doi:10.1140/epje/i2016-16051-4
Abstract
We consider a colony of point-like self-propelled surfactant particles (swimmers) without direct interactions that cover a thin liquid layer on a solid support. Although the particles predominantly swim normal to the free film surface, their motion also has a component parallel to the film surface. The coupled dynamics of the swimmer density and film height profile is captured in a long-wave model allowing for diffusive and convective transport of the swimmers (including rotational diffusion). The dynamics of the film height profile is determined by three physical effects: the upward pushing force of the swimmers onto the liquid-gas interface that always destabilizes the flat film, the solutal Marangoni force due to gradients in the swimmer concentration that always acts stabilising, and finally the rotational diffusion of the swimmers together with the in-plance active motion that acts either stabilising or destabilising. After reviewing and extending the analysis of the linear stability of the flat film with uniform swimmer density, we analyse the full nonlinear dynamic equations and show that point-like swimmers, which only interact via long-wave deformations of the liquid film, self-organise in highly regular (standing, travelling and modulated waves) and various irregular patterns for swimmer density and film height.
References in corpus (15)
- The hydrodynamics of swimming microorganisms
- Self-motile colloidal particles: from directed propulsion to random walk
- Spontaneous motion in hierarchically assembled active matter
- Meso-scale turbulence in living fluids
- Non-equilibrium clustering of self-propelled rods
- Fluid Flows Created by Swimming Bacteria Drive Self-Organization in Confined Suspensions
- Dynamics of a Brownian circle swimmer
- Hydrodynamics of self-propelled hard rods
- Dynamic clustering and chemotactic collapse of self-phoretic active particles
- Collective Motion of Self-Propelled Particles with Memory
- Minimal continuum theories of structure formation in dense active fluids
- Direct measurement of thermophoretic forces
- Thermodynamically consistent description of the hydrodynamics of free surfaces covered by insoluble surfactants of high concentration
- Nonlinear competition between asters and stripes in filament-motor-systems
- Stability of liquid films covered by a carpet of self-propelled surfactant particles
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- The effect of self-induced Marangoni flow on polar-nematic waves in active-matter systems