Accurate universal models for the mass accretion histories and concentrations of dark matter halos
D. H. Zhao (SHAO, Mpa), Y. P. Jing (SHAO, Mpa), H. J. Mo (UMASS), G., Boerner (MPA)

TL;DR
This paper develops accurate, universal empirical models for the mass accretion histories and concentrations of dark matter halos across various cosmological models and mass scales, validated by extensive simulations.
Contribution
It introduces new empirical models for halo evolution that are accurate, universal, and simple, outperforming previous models and applicable across different cosmologies and masses.
Findings
Models accurately predict halo concentrations across models and redshifts.
Simulation results reveal two distinct phases in halo evolution.
The models are validated against high-resolution simulations.
Abstract
A large amount of observations have constrained cosmological parameters and the initial density fluctuation spectrum to a very high accuracy. However, cosmological parameters change with time and the power index of the power spectrum varies with mass scale dramatically in the so-called concordance Lambda CDM cosmology. Thus, any successful model for its structural evolution should work well simultaneously for various cosmological models and different power spectra. We use a large set of high-resolution N-body simulations of a variety of structure formation models (scale-free, standard CDM, open CDM, and Lambda CDM) to study the mass accretion histories (MAHs), the mass and redshift dependence of concentrations and the concentration evolution histories of dark matter halos. We find that there is significant disagreement between the much-used empirical models in the literature and our…
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