Defect-Mediated Aggregation and Motility-Induced Phase Separation in Self-Propelled Lattice-Gas Active XY Model
arXiv:2507.17108 · doi:10.7566/JPSJ.95.054802
Abstract
We propose an ``active XY model'' that incorporates key elements of both the classical XY model and the Vicsek model to study the role of topological defects in active matter systems. This model features self-propelled particles with XY spin degrees of freedom on a lattice and introduces a self-propulsion parameter controlling the directional bias of particle motion. Using numerical simulations, we demonstrate that self-propulsion induces motility-induced phase separation (MIPS), where particles aggregate into clusters around topological defects with positive vortex charge. In contrast, negative charge defects tend to dissipate. We analyze the evolution of these clusters and show that their growth follows a two-stage exponential relaxation process, with characteristic time scaling as with the system size , reminiscent of first-order phase separation in equilibrium systems. Our results highlight the important role of topological defects in phase separations and clustering behavior in active systems, bridging nonequilibrium dynamics and equilibrium theory.
33 pages, 19 figures
References in corpus (20)
- Novel type of phase transition in a system of self-driven particles
- Active Particles in Complex and Crowded Environments
- Motility-Induced Phase Separation
- Flocks, herds, and schools: A quantitative theory of flocking
- Topological defect launches 3D mound in the active nematic sheet of neural progenitors
- A continuum theory of phase separation kinetics for active Brownian particles
- Topological active matter
- Entropy production in field theories without time reversal symmetry: Quantifying the non-equilibrium character of active matter
- Cluster phases and bubbly phase separation in active fluids: Reversal of the Ostwald process
- Revisiting the flocking transition using active spins
- Lattice Models of Nonequilibrium Bacterial Dynamics
- A Reanalysis of the Hydrodynamic Theory of Fluid, Polar-Ordered Flocks
- Exact Hydrodynamic Description of Active Lattice Gases
- Ordering Kinetics in the Active Model B
- Universal properties of repulsive self-propelled particles and attractive driven particles
- Emergence of a giant rotating cluster of fish in three dimensions by local interactions
- Mobility-induced order in active XY spins on a substrate
- Active XY model on a substrate: Density fluctuations and phase ordering
- Power-law correlation in the homogeneous disordered state of anisotropically self-propelled systems
- Effect of gravitational field on collective motion of fish