Clustering of microswimmers: Interplay of shape and hydrodynamics
arXiv:1807.01211 · doi:10.1039/c8sm01390j
Abstract
The spatiotemporal dynamics in systems of active self-propelled particles is controlled by the propulsion mechanism in combination with various direct interactions, such as steric repulsion, hydrodynamics, and chemical fields. Yet, these direct interactions are typically anisotropic, and come in different 'flavors', such as spherical and elongated particle shapes for steric repulsion, pusher and puller flow fields for hydrodynamics, etc. The combination of the various aspects is expected to lead to new emergent behavior. However, it is a priori not evident whether shape and hydrodynamics act synergistically or antagonistically to generate motility-induced clustering (MIC) and phase separation (MIPS). We employ a model of prolate spheroidal microswimmers - called squirmers - in quasi-two-dimensional confinement to address this issue by mesoscale hydrodynamic simulations. For comparison, non-hydrodynamic active Brownian particles (ABPs) are considered to elucidate the contribution of hydrodynamic interactions on MIC and MIPS. For spherical particles, the comparison between ABP and hydrodynamic-squirmer ensembles reveals a suppression of MIPS due to hydrodynamic interactions. The fundamental difference between ABPs and squirmers is attributed to an increased reorientation of squirmers by hydrodynamic torques during their collisions. In contrast, for elongated squirmers, hydrodynamics interactions enhance MIPS. Thus, hydrodynamic interactions show opposing effects on MIPS for spherical and elongated microswimmers.
References in corpus (24)
- Motility-Induced Phase Separation
- Physics of Microswimmers - Single Particle Motion and Collective Behavior
- Meso-scale turbulence in living fluids
- Propulsion of a molecular machine by asymmetric distribution of reaction--products
- Fluid dynamics and noise in bacterial cell-cell and cell-surface scattering
- Hydrodynamics of self-propulsion near a boundary: predictions and accuracy of far-field approximations
- Non-equilibrium clustering of self-propelled rods
- Collective motion and nonequilibrium cluster formation in colonies of gliding bacteria
- Full phase diagram of active Brownian disks: from melting to motility-induced phase separation
- Dynamic clustering and chemotactic collapse of self-phoretic active particles
- Swarm behavior of self-propelled rods and swimming flagella
- Transport coefficients of off-lattice mesoscale-hydrodynamics simulation techniques
- Modeling a spheroidal microswimmer and cooperative swimming in thin films
- Spontaneous aggregation and global polar ordering in squirmer suspensions
- A frictionless microswimmer
- Derivation of a hydrodynamic theory for mesoscale dynamics in microswimmer suspensions
- Morphology of clusters of attractive dry and wet self-propelled spherical particle suspensions
- Phase behavior of active Brownian disks, spheres, and dumbbells
- Thermostat for non-equilibrium multiparticle collision dynamics simulations
- Hydrodynamic interactions in dense active suspensions: from polar order to dynamical clusters
- Dynamics of a homogeneous active dumbbell system
- Activity-induced clustering in model dumbbell swimmers: The role of hydrodynamic interactions
- Bacterial swarmer cells in confinement: A mesoscale hydrodynamic simulation study
- Fore-aft asymmetric flocking
Cited by in corpus (24)
- The 2019 Motile Active Matter Roadmap
- Computational models for active matter
- Self-Propelled Rods: Insights and Perspectives for Active Matter
- A particle-field representation unifies paradigms in active matter
- Active turbulence in microswimmer suspensions -- the role of active hydrodynamic stress and volume exclusion
- Enhanced rotational motion of spherical squirmer in polymer solutions
- Role of rotational inertia for collective phenomena in active matter
- Emergent collective behavior of active Brownian particles by visual perception
- Dynamical self-assembly of dipolar active Brownian particles in two dimensions
- Local stress and pressure in an inhomogeneous system of spherical active Brownian particles
- Emergent vortices and phase separation in systems of chiral active particles with dipolar interactions
- Particle-resolved lattice Boltzmann simulations of 3-dimensional active turbulence
- Hydrodynamic Synchronisation of Chiral Microswimmers
- Shape matters: A Brownian microswimmer in a channel
- Hydrodynamic effects on the liquid-hexatic transition of active colloids
- Gap statistics of two interacting run and tumble particles in one dimension
- Work fluctuations of self-propelled particles in the phase separated state
- Confinement-induced alternating interactions between inclusions in an active fluid
- Phase separation of active Brownian particles on curved surfaces
- Multi-Ciliated Microswimmers -- Metachronal Coordination and Helical Swimming
- Spontaneous propulsion of an isotropic colloid in a phase-separating environment
- Universal scaling and characterisation of gelation in associative polymer solutions
- Stability of interlocked self-propelled dumbbell clusters
- Hydrodynamics of Immiscible Binary Fluids with Viscosity Contrast: A multiparticle collision dynamics approach