English

Self-Diffusion in 2D Dusty Plasma Liquids: Numerical Simulation Results

Plasma Physics 2009-02-25 v3 Computational Physics

Abstract

We perform Brownian dynamics simulations for studying the self-diffusion in two-dimensional (2D) dusty plasma liquids, in terms of both mean-square displacement and velocity autocorrelation function (VAF). Super-diffusion of charged dust particles has been observed to be most significant at infinitely small damping rate γ\gamma for intermediate coupling strength, where the long-time asymptotic behavior of VAF is found to be the product of t1t^{-1} and exp(γt)\exp{(-\gamma t)}. The former represents the prediction of early theories in 2D simple liquids and the latter the VAF of a free Brownian particle. This leads to a smooth transition from super-diffusion to normal diffusion, and then to sub-diffusion with an increase of the damping rate. These results well explain the seemingly contradictory scattered in recent classical molecular dynamics simulations and experiments of dusty plasmas.

Keywords

Cite

@article{arxiv.0812.0338,
  title  = {Self-Diffusion in 2D Dusty Plasma Liquids: Numerical Simulation Results},
  author = {Lu-Jing Hou and Alexander Piel and P. K. Shukla},
  journal= {arXiv preprint arXiv:0812.0338},
  year   = {2009}
}

Comments

10 pages 5 figures, accepted by PRL

R2 v1 2026-06-21T11:47:14.177Z