Collective motion and nonequilibrium cluster formation in colonies of gliding bacteria
arXiv:1302.0311 · doi:10.1103/PhysRevLett.108.098102
Abstract
We characterize cell motion in experiments and show that the transition to collective motion in colonies of gliding bacterial cells confined to a monolayer appears through the organization of cells into larger moving clusters. Collective motion by non-equilibrium cluster formation is detected for a critical cell packing fraction around 17%. This transition is characterized by a scale-free power-law cluster size distribution, with an exponent , and the appearance of giant number fluctuations. Our findings are in quantitative agreement with simulations of self-propelled rods. This suggests that the interplay of self-propulsion of bacteria and the rod-shape of bacteria is sufficient to induce collective motion.
References in corpus (6)
- Novel type of phase transition in a system of self-driven particles
- Fluid dynamics and noise in bacterial cell-cell and cell-surface scattering
- Non-equilibrium clustering of self-propelled rods
- Swarming and swirling in self-propelled polar granular rods
- Swarm behavior of self-propelled rods and swimming flagella
- A mean-field theory for self-propelled particles interacting by velocity alignment mechanisms