Elasticity-based polymer sorting in active fluids: A Brownian dynamics study
arXiv:1706.07166 · doi:10.1039/C7CP02947K
Abstract
While the dynamics of polymer chains in equilibrium media is well understood by now, the polymer dynamics in active non-equilibrium environments can be very different. Here we study the dynamics of polymers in a viscous medium containing self-propelled particles in two dimensions by using Brownian dynamics simulations. We find that the polymer center of mass exhibits a superdiffusive motion at short to intermediate times and the motion turns normal at long times, but with a greatly enhanced diffusivity. Interestingly, the long time diffusivity shows a non-monotonic behavior as a function of the chain length and stiffness. We analyze how the polymer conformation and the accumulation of the self-propelled particles, and therefore the directed motion of the polymer, are correlated. At the point of maximal polymer diffusivity, the polymer has preferentially bent conformations maintained by the balance between the chain elasticity and the propelling force generated by the active particles. We also consider the barrier crossing dynamics of actively-driven polymers in a double-well potential. The barrier crossing times are demonstrated to have a peculiar non-monotonic dependence, related to that of the diffusivity. This effect can be potentially utilized for sorting of polymers from solutions in \textit{in vitro} experiments.
11 pages, 7 figures
References in corpus (17)
- Self-motile colloidal particles: from directed propulsion to random walk
- Physics of Microswimmers - Single Particle Motion and Collective Behavior
- Diffusive transport without detailed balance in motile bacteria: Does microbiology need statistical physics?
- Sedimentation, trapping, and rectification of dilute bacteria
- Tuned, driven, and active soft matter
- Self-Starting Micromotors in a Bacterial Bath
- Multidimensional Stationary Probability Distribution for Interacting Active Particles
- Dynamic clustering and chemotactic collapse of self-phoretic active particles
- Generalized energy equipartition in harmonic oscillators driven by active baths
- Transport powered by bacterial turbulence
- Non-equilibrium microtubule fluctuations in a model cytoskeleton
- How does a flexible chain of active particles swell?
- Unusual swelling of a polymer in a bacterial bath
- Activity induced collapse and re-expansion of rigid polymers
- Kinetics of polymer looping with macromolecular crowding: effects of volume fraction and crowder size
- Curvature Induced Activation of a Passive Tracer in an Active Bath
- The role of particle shape in active depletion