English

Translational and rotational dynamics of a self-propelled Janus probe in crowded environments

Soft Condensed Matter 2020-08-06 v1

Abstract

We computationally investigate the dynamics of a self-propelled Janus probe in crowded environments. The crowding is caused by the presence of viscoelastic polymers or non-viscoelastic disconnected monomers. Our simulations show that the translational, as well as rotational mean square displacements, have a distinctive three-step growth for fixed values of self-propulsion force, and steadily increase with self-propulsion, irrespective of the nature of the crowder. On the other hand, in the absence of crowders, the rotational dynamics of the Janus probe is independent of self-propulsion force. On replacing the repulsive polymers with sticky ones, translational and rotational mean square displacements of the Janus probe show a sharp drop. Since different faces of a Janus particle interact differently with the environment, we show that the direction of self-propulsion also affects its dynamics. The ratio of long-time translational and rotational diffusivities of the self-propelled probe with a fixed self-propulsion, when plotted against the area fraction of the crowders, passes through a minima and at higher area fraction merges to its value in the absence of the crowder. This points towards the decoupling of translational and rotational dynamics of the self-propelled probe at intermediate area fraction of the crowders. However, such translational-rotational decoupling is absent for passive probes.

Keywords

Cite

@article{arxiv.2008.02089,
  title  = {Translational and rotational dynamics of a self-propelled Janus probe in crowded environments},
  author = {Ligesh Theeyancheri and Subhasish Chaki and Nairhita Samanta and Rohit Goswami and Raghunath Chelakkot and Rajarshi Chakrabarti},
  journal= {arXiv preprint arXiv:2008.02089},
  year   = {2020}
}

Comments

Simulation videos are available on request