Orientational correlations in fluids with quenched disorder
Abstract
Snapshots of colloidal particles moving on disordered two-dimensional substrates can be used to extract equal-time many-body correlations in their positions. To understand the systematics of these correlations, we perform Monte Carlo simulations of a two-dimensional model fluid placed in a quenched disordered background. We use configurations generated from these simulations to compute translational and orientational two-point correlations at equal time, concentrating on correlations in local orientational order as a function of density and disorder strength. We calculate both the disorder averaged version of conventional two-point correlation functions for orientational order, as well as the disorder averaged version of a novel correlation function of time-averaged disorder-induced inhomogeneities in local orientation analogous to the Edwards-Anderson correlation function in spin systems. We demonstrate that these correlations can exhibit interesting non-monotonic behavior in proximity to the underlying fluid-solid transition and suggest that this prediction should be experimentally accessible.
Cite
@article{arxiv.1906.07951,
title = {Orientational correlations in fluids with quenched disorder},
author = {N. Shankaraiah and Surajit Sengupta and Gautam I. Menon},
journal= {arXiv preprint arXiv:1906.07951},
year = {2019}
}
Comments
9 pages, 5 figures