Turbulence to order transitions in activity patterned active nematics
arXiv:2409.15479 · doi:10.1103/PhysRevE.111.035404
Abstract
We numerically study two-dimensional active nematics with periodic activity patterning. For stripes of activity, we observe a transition from two-dimensional to one-dimensional active turbulence as the maximum active force and distance between activity stripes increases, followed by a transition to stable vortices ordered antiferromagnetically along the stripes and ferromagnetically transverse to the stripes. By comparing to a triangular lattice of activity circles, we find that transitions to two-dimensional active turbulence emerge from interplays between the active length scale and activity density, independent of the patterning geometry. The vortex ordering, on the other hand, is highly sensitive to patterning geometry, which we show by comparing the activity stripes to columns of activity circles, where the vortex ordering is lost. Our results provide a mechanism for inducing non-equilibrium phase transitions in active nematics using activity inhomogeneity, which can be further exploited to create activity patterned ordered phases.
11 pages, 8 figures
References in corpus (34)
- Active Particles in Complex and Crowded Environments
- Spontaneous motion in hierarchically assembled active matter
- Living Liquid Crystals
- Defect annihilation and proliferation in active nematics
- Orientational order of motile defects in active nematics
- Transition from turbulent to coherent flows in confined three-dimensional active fluids
- Defect dynamics in active nematics
- Topological defects promote layer formation in Myxococcus xanthus colonies
- Self-organized dynamics and the transition to turbulence of confined active nematics
- Tunable structure and dynamics of active liquid crystals
- Onset of meso-scale turbulence in living fluids
- Instabilities and Topological Defects in Active Nematics
- Structuring Stress for Active Materials Control
- Biphasic, Lyotropic, Active Nematics
- Defect unbinding in active nematics
- Dynamics of defects in active nematics
- Statistical Properties of Autonomous Flows in 2D Active Nematics
- Active nematic materials with substrate friction
- Submersed Micropatterned Structures Control Active Nematic Flow, Topology and Concentration
- Hydrodynamics of Active Defects: from order to chaos to defect ordering
- Active nematics with anisotropic friction: the decisive role of the flow aligning parameter
- Role of friction in multidefect ordering
- Design rules for controlling active topological defects
- Cascade or not cascade? Energy transfer and elastic effects in active nematics
- Singularity identification for the characterization of topology, geometry, and motion of nematic disclination lines
- Propagation of active nematic-isotropic interfaces on substrates
- Probing active nematics with in-situ microfabricated elastic inclusions
- Active nematic-isotropic interfaces in channels
- Alignment of a topological defect by an activity gradient
- Dispersion of activity at an active-passive nematic interface
- Asymmetric fluctuations and self-folding of active interfaces
- Vortex Lattices in Active Nematics with Periodic Obstacle Arrays
- Friction mediated phase transition in confined active nematics
- Analytical model for the motion and interaction of two-dimensional active nematic defects