Boosting hierarchical structure formation with scalar-interacting dark matter
Abstract
We investigate the effect of long-range scalar interactions in dark matter (DM) models of cosmic structure formation with a particular focus on the formation times of haloes. Utilising -body simulations with DM particles we show that in our models dark matter haloes form substantially earlier: tracing objects up to redshift we find that the formation time, as characterised by the redshift at which the halo has assembled half of its final mass, is gradually shifted from in the fiducial LCDM model to in the most extreme self-interaction model. This is accompanied by a shift of the redshift that marks the transition between merger and steady accretion epochs from in the \lcdm\ halos to in our strongest interaction model. In other words, the scalar-interacting model employed in this work produces more structures at high redshifts, prolonging at the same time the steady accretion phases. These effects taken together can help the LCDM model to account for a high redshift reionisation as indicated by the WMAP data and can alleviate issues related to the survival of the thin-disk dominated galaxies at low redshifts.
Cite
@article{arxiv.1004.2929,
title = {Boosting hierarchical structure formation with scalar-interacting dark matter},
author = {Wojciech A. Hellwing and Steffen R. Knollmann and Alexander Knebe},
journal= {arXiv preprint arXiv:1004.2929},
year = {2010}
}
Comments
5 pages, 3 figures, 1 table. Final version to be printed in MNRAS Letters. 4 new references added