Persistent anti-correlations in Brownian dynamics simulations of dense colloidal suspensions revealed by noise suppression
Abstract
Transport properties of a hard-sphere colloidal fluid are investigated by Brownian dynamics simulations. We implement a novel algorithm for the time-dependent velocity-autocorrelation function (VACF) essentially eliminating the noise of the bare random motion. The measured VACF reveals persistent anti-correlations manifested by a negative algebraic power-law tail at all densities. At small packing fractions, the simulations fully agree with the analytic low-density prediction, yet the amplitude of the tail becomes dramatically suppressed as the packing fraction is increased. The mode-coupling theory of the glass transition provides a qualitative explanation for the strong variation in terms of the static compressibility as well as the slowing down of the structural relaxation.
Keywords
Cite
@article{arxiv.2004.10738,
title = {Persistent anti-correlations in Brownian dynamics simulations of dense colloidal suspensions revealed by noise suppression},
author = {Suvendu Mandal and Lukas Schrack and Hartmut Löwen and Matthias Sperl and Thomas Franosch},
journal= {arXiv preprint arXiv:2004.10738},
year = {2020}
}
Comments
12 pages, 9 figures