paper

Study of Active Brownian Particle Diffusion in Polymer Solutions

arXiv:1801.03279

Abstract

The diffusion behavior of an active Brownian particle (ABP) in polymer solutions is studied using Langevin dynamics simulations. We find that the long time diffusion coefficient can show a non-monotonic dependence on the particle size if the active force is large enough, wherein a bigger particle would diffuse faster than a smaller one which is quite counterintuitive. By analyzing the short time dynamics in comparison to the passive one, we find that such non-trivial dependence results from the competition between persistence motion of the ABP and the length-scale dependent effective viscosity that the particle experienced in the polymer solution. \textcolor{black}{We have also introduced an effective viscosity experienced by the ABP phenomenologically. Such an active is found to be larger than a passive one and strongly depends on and }\textcolor{magenta}{.} In addition, we find that the dependence of on propelling force presents a well scaling form at a fixed and the scaling factor changes non-monotonically with . Such results demonstrate that active issue plays rather subtle roles on the diffusion of nano-particle in complex solutions.

10 pages and 7 figures

Study of Active Brownian Particle Diffusion in Polymer Solutions · wovepaper