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 disap...
Active colloids self-organise to a variety of collective states, ranging from highly motile "molecul...
International audienceAbstract Whereas self-propelled hard discs undergo motility-induced phase sepa...
Self-propelled colloids are microscopic entities of typical size between a few nanometers to a few m...
One of the most intriguing phenomena in active matter has been the gas-liquid like motility induced...
We consider stochastic dynamics of self-propelled particles with nonlocal normalized alignment inter...
Inspired by groups of animals and robots, we study the collective dynamics of large numbers of activ...
We present a hydrodynamic theory for systems of dipolar active Brownian particles which, in the regi...
Studies of active matter, from molecular assemblies to animal groups, have revealed two broad classe...
We generalize the Vicsek model to describe the collective behavior of polar circle swimmers with loc...
The aim of this paper is to discuss the mathematical modeling of Brownian active particle systems, a...
Self-assembly of active particles is believed to play an important role in enabling tomorrow's gener...
To understand the collective behaviors of biological swarms, flocks, and colonies, we investigated t...
Murmurations of birds, schools of fish, and herds of migrating animals are macroscale examples of se...
International audienceCoherent vortical motion has been reported in a wide variety of populations in...
Self-organization often develops in thermal equilibrium as a conse-quence of entropy and potential i...
Active colloids self-organise to a variety of collective states, ranging from highly motile "molecul...
International audienceAbstract Whereas self-propelled hard discs undergo motility-induced phase sepa...
Self-propelled colloids are microscopic entities of typical size between a few nanometers to a few m...
One of the most intriguing phenomena in active matter has been the gas-liquid like motility induced...
We consider stochastic dynamics of self-propelled particles with nonlocal normalized alignment inter...
Inspired by groups of animals and robots, we study the collective dynamics of large numbers of activ...
We present a hydrodynamic theory for systems of dipolar active Brownian particles which, in the regi...
Studies of active matter, from molecular assemblies to animal groups, have revealed two broad classe...
We generalize the Vicsek model to describe the collective behavior of polar circle swimmers with loc...
The aim of this paper is to discuss the mathematical modeling of Brownian active particle systems, a...
Self-assembly of active particles is believed to play an important role in enabling tomorrow's gener...
To understand the collective behaviors of biological swarms, flocks, and colonies, we investigated t...
Murmurations of birds, schools of fish, and herds of migrating animals are macroscale examples of se...
International audienceCoherent vortical motion has been reported in a wide variety of populations in...
Self-organization often develops in thermal equilibrium as a conse-quence of entropy and potential i...
Active colloids self-organise to a variety of collective states, ranging from highly motile "molecul...
International audienceAbstract Whereas self-propelled hard discs undergo motility-induced phase sepa...
Self-propelled colloids are microscopic entities of typical size between a few nanometers to a few m...