Flocking transition in phoretically interacting active particles with pinning disorder
arXiv:2511.10386 · doi:10.1088/1367-2630/ae4530
Abstract
Recent studies in the collective behavior of active colloids have shown that a global polar order may emerge due to long-ranged chemo-repulsive interactions between them. Here, we report the role of pinning disorder in the flocking transition for such a system. To this end, we study the problem of chemically interacting active colloids with some fraction of the colloids randomly pinned over space such that they can only rotate while phoretically interacting with other particles. Using this model, we investigate the sustenance of global polar order in the presence of quenched spatial disorder. We quantify the flocking transition by studying the global polarization, and the role of finite-size effects. We find that in the crystallite flocking phase, even a small fraction of pinning can destroy spatial crystalline order, although polar order in the form of a liquid phase is maintained. It is observed that polar order is sustained in a system with a higher pinning fraction if the long-ranged repulsive force is subsequently increased. However, in absence of chemo-repulsive forces between particles, polar order drastically decreases even with a smaller pinning fraction. Our work suggests that the flocking transition of active colloids can be controlled via "translationally inert" obstacles, that rotate but do not translate whilst interacting with the bulk.
12 pages, 5 figures
References in corpus (36)
- Novel type of phase transition in a system of self-driven particles
- Active Particles in Complex and Crowded Environments
- Collective motion
- Motility-Induced Phase Separation
- Collective motion of self-propelled particles interacting without cohesion
- Green Algae as Model Organisms for Biological Fluid Dynamics
- Clusters, asters and collective oscillations in chemotactic colloids
- Distortion and destruction of colloidal flocks in disordered environments
- Minimal model of active colloids highlights the role of mechanical interactions in controlling the emergent behavior of active matter
- Emergent states in dense systems of active rods: from swarming to turbulence
- Active phase separation by turning toward regions of higher density
- A particle-field representation unifies paradigms in active matter
- Self-assembly of Active Colloidal Molecules with Dynamic Function
- Growing Dynamical Facilitation on Approaching the Random Pinning Colloidal Glass Transition
- Dynamic Phases of Active Matter Systems with Quenched Disorder
- Chemotactic self-caging in active emulsions
- Flocking without alignment interactions in attractive active Brownian particles
- Velocity alignment promotes motility-induced phase separation
- Self-propelled particles with selective attraction-repulsion interaction - From microscopic dynamics to coarse-grained theories
- Flocking in complex environments -- attention trade-offs in collective information processing
- Breakdown of Ergodicity and Self-Averaging in Polar Flocks with Quenched Disorder
- Understanding Collective Dynamics of Soft Active Colloids by Binary Scattering
- Active phase separation: new phenomenology from non-equilibrium physics
- The 2024 Motile Active Matter Roadmap
- Influence of Sensorial Delay on Clustering and Swarming
- Polar flock in the presence of random quenched rotators
- Small Obstacle in a Large Polar Flock
- Emergent dynamics due to chemo-hydrodynamic self-interactions in active polymers
- Competing chemical and hydrodynamic interactions in autophoretic colloidal suspensions
- Dynamical structures in phase-separating non-reciprocal polar active mixtures
- Pattern formation and phase transition in the collective dynamics of a binary mixture of polar self-propelled particles
- Reentrant phase behavior in binary topological flocks with nonreciprocal alignment
- Binary Mixtures of Intelligent Active Brownian Particles with Visual Perception
- Rigid flocks, undulatory gaits, and chiral foldamers in a chemically active polymer
- Minimal mechanism for flocking in phoretically interacting active particles
- Order-Disorder Transition in Delay Vicsek Model