arXiv · 1908.07302
Non-Gaussian anomalous dynamics in systems of interacting run-and-tumble particles
Abstract
The motion of a tagged degree of freedom can give important insight in the interactions present in a complex environment. We investigate the dynamics of a tagged particle in two non-equilibrium systems that consist of interacting run-and-tumble particles. The first one is an exactly solvable polymer model, the second is a two-dimensional lattice model, which is studied through simulations. We find that in both cases a tagged particle shows anomalous dynamics and non-Gaussian behaviour for times below the persistence time of the run-and-tumble motion. For later times, the dynamics of the tagged monomer becomes diffusive and Gaussian. In the lattice model, non-Gaussianity persists and can, for intermediate densities, be well approximated by a Laplace distribution. We attribute this behaviour to the dynamically changing environment of the tagged particle, which we argue, is an essential ingredient to observe deviations from Gaussianity.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Stefanie Put, Jonas Berx, Carlo Vanderzande. 2019-09-12. Non-Gaussian anomalous dynamics in systems of interacting run-and-tumble particles. https://doi.org/10.1088/1742-5468%2Fab4e90
Cite the original work for its findings. Save a collection to share your selection of sources.