Homogeneous SPC/E water nucleation in large molecular dynamics simulations
Abstract
We perform direct large molecular dynamics simulations of homogeneous SPC/E water nucleation, using up to molecules. Our large system sizes allow us to measure extremely low and accurate nucleation rates, down to , helping close the gap between experimentally measured rates . We are also able to precisely measure size distributions, sticking efficiencies, cluster temperatures, and cluster internal densities. We introduce a new functional form to implement the Yasuoka-Matsumoto nucleation rate measurement technique (threshold method). Comparison to nucleation models shows that classical nucleation theory over-estimates nucleation rates by a few orders of magnitude. The semi-phenomenological nucleation model does better, under-predicting rates by at worst, a factor of 24. Unlike what has been observed in Lennard-Jones simulations, post-critical clusters have temperatures consistent with the run average temperature. Also, we observe that post-critical clusters have densities very slightly higher, , than bulk liquid. We re-calibrate a Hale-type vs. scaling relation using both experimental and simulation data, finding remarkable consistency in over orders of magnitude in the nucleation rate range, and K in the temperature range.
Cite
@article{arxiv.1507.07335,
title = {Homogeneous SPC/E water nucleation in large molecular dynamics simulations},
author = {R. Angelil and J. Diemand and K. Tanaka and H. Tanaka},
journal= {arXiv preprint arXiv:1507.07335},
year = {2015}
}
Comments
Accepted for publication in the Journal of Chemical Physics