Role of viscoelasticity on the dynamics and aggregation of chemically active sphere-dimers
arXiv:2102.02420 · doi:10.1063/5.0038743
Abstract
The impact of complex media on the dynamics of active swimmers has gained a thriving interest in the research community for their prominent applications in various fields. This paper investigates the effect of viscoelasticity on the dynamics and aggregation of chemically powered sphere-dimers by using a coarse-grained hybrid mesoscopic simulation technique. The sphere-dimers perform active motion by virtue of the concentration gradient around the swimmer's surface, produced by the chemical reaction at one end of the dimer. We observe that the fluid elasticity enhances translational and rotational motion of a single dimer, however for a pair of dimers, the clustering in a particular alignment is more pronounced. In case of multiple dimers, the kinetics of cluster formation along with their propulsive nature are presented in detail. The key factors influencing the enhanced motility and the aggregation of dimers are the concentration gradients, hydrodynamic coupling and the microstructures present in the system.
11 pages, 14 figures
References in corpus (9)
- Novel type of phase transition in a system of self-driven particles
- Self-motile colloidal particles: from directed propulsion to random walk
- Diffusive transport without detailed balance in motile bacteria: Does microbiology need statistical physics?
- Hydrodynamic interactions and Brownian forces in colloidal suspensions: Coarse-graining over time and length-scales
- Propulsion in a viscoelastic fluid
- Self-Propelled Rods near Surfaces
- Stress Tensors of Multiparticle Collision Dynamics Fluids
- Multi-particle collision dynamics modeling of viscoelastic fluids
- Behavior of active filaments near solid-boundary under linear shear flow