Matter power spectra in dynamical-Dark Energy cosmologies
C. Fedeli, K. Dolag, L. Moscardini

TL;DR
This study uses numerical simulations to explore how dynamical Dark Energy models influence matter distribution and baryonic effects, revealing consistent qualitative signatures across models and slight variations in baryonic backreaction.
Contribution
It provides the first detailed analysis of matter power spectra in dynamical Dark Energy cosmologies, incorporating baryonic processes and halo model modifications.
Findings
Dynamical Dark Energy introduces specific signatures in matter power spectra.
Baryonic backreaction is similar across models but with reduced halo concentration increases.
Star formation efficiency decreases in dynamical Dark Energy models.
Abstract
(abridged) We used a suite of numerical cosmological simulations in order to investigate the effect of gas cooling and star formation on the large scale matter distribution. The simulations follow the formation of cosmic structures in five different Dark Energy models: the fiducial CDM cosmology and four models where the Dark Energy density is allowed to have a non-trivial redshift evolution. For each cosmology we have a control run with dark matter only, in order to allow a direct assessment of the impact of baryonic processes. We found that the power spectra of gas and stars, as well as the total matter power spectrum, are in qualitative agreement with the results of previous works in the framework of the fiducial model, although several quantitative differences exist. We used the halo model in order to investigate the backreaction of gas and stars on the dark matter…
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