Spontaneous flow states in active nematics: a unified picture
arXiv:0811.3432 · doi:10.1209/0295-5075/85/18008
Abstract
Continuum hydrodynamic models of active liquid crystals have been used to describe dynamic self-organising systems such as bacterial swarms and cytoskeletal gels. A key prediction of such models is the existence of self-stabilising kink states that spontaneously generate fluid flow in quasi-one dimensional channels. Using simple stability arguments and numerical calculations we extend previous studies to give a complete characterisation of the phase space for both contractile and extensile particles (ie pullers and pushers) moving in a narrow channel as a function of their flow alignment properties and initial orientation. This gives a framework for unifying many of the results in the literature. We describe the response of the kink states to an imposed shear, and investigate how allowing the system to be polar modifies its dynamical behaviour.
6 pages, 6 figures; submitted to Europhysics Letters
References in corpus (6)
- Hydrodynamic attraction of swimming microorganisms by surfaces
- Steady-state hydrodynamic instabilities of active liquid crystals: Hybrid lattice Boltzmann simulations
- Diffusion and spatial correlations in suspensions of swimming particles
- Shearing active gels close to the isotropic-nematic transition
- Generic phase diagram of active polar films
- Rheology of Active Filament Solutions