English

Memory effects and active Brownian diffusion

Soft Condensed Matter 2015-12-08 v1 Chemical Physics

Abstract

A self-propelled artificial microswimmer is often modeled as a ballistic Brownian particle moving with constant speed aligned along one of its axis, but changing direction due to random collisions with the environment. Similarly to thermal noise, its angular randomization is described as a memoryless stochastic process. Here, we speculate that finite-time correlations in the orientational dynamics can affect the swimmer's diffusivity. To this purpose we propose and solve two alternative models. In the first one we simply assume that the environmental fluctuations governing the swimmer's propulsion are exponentially correlated in time, whereas in the second one we account for possible damped fluctuations of the propulsion velocity around the swimmer's axis. The corresponding swimmer's diffusion constants are predicted to get, respectively, enhanced or suppressed upon increasing the model memory time. Possible consequences of this effect on the interpretation of the experimental data are discussed.

Keywords

Cite

@article{arxiv.1511.06113,
  title  = {Memory effects and active Brownian diffusion},
  author = {Pulak K. Ghosh and Yunyun Li and Giampiero Marchegiani and Fabio Marchesoni},
  journal= {arXiv preprint arXiv:1511.06113},
  year   = {2015}
}

Comments

accepted by J. Chem. Phys

R2 v1 2026-06-22T11:49:13.648Z