4.6 Article

Emergent vortices and phase separation in systems of chiral active particles with dipolar interactions

Journal

SOFT MATTER
Volume 17, Issue 28, Pages 6833-6847

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1sm00545f

Keywords

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Funding

  1. Deutsche Forschungsgemeinschaft [GRK 1524 (DFG), 599982]

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Using BD simulations, we investigated the self-organization of a monolayer of chiral active particles with dipolar interactions. Despite performing simulations at high dipolar coupling strength and low density, we observed phenomena such as vortex formation, phase separation, and flocking transitions in the system. We further studied the dynamics of simple ring structures under the impact of self-propulsion to understand the appearance and disappearance of vortices.
Using Brownian dynamics (BD) simulations we investigate the self-organization of a monolayer of chiral active particles with dipolar interactions. Each particle is driven by both, translational and rotational self-propulsion, and carries a permanent point dipole moment at its center. The direction of the translational propulsion for each particle is chosen to be parallel to its dipole moment. Simulations are performed at high dipolar coupling strength and a density below that related to motility-induced phase separation in simple active Brownian particles. Despite this restriction, we observe a wealth of phenomena including formation of two types of vortices, phase separation, and flocking transitions. To understand the appearance and disappearance of vortices in the many-particle system, we further investigate the dynamics of simple ring structures under the impact of self-propulsion.

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