Counts of galaxy clusters as cosmological probes: the impact of baryonic physics
arXiv:1210.4117 · doi:10.1088/1475-7516/2013/04/022
Abstract
The halo mass function from N-body simulations of collisionless matter is generally used to retrieve cosmological parameters from observed counts of galaxy clusters. This neglects the observational fact that the baryonic mass fraction in clusters is a random variable that, on average, increases with the total mass (within an overdensity of 500). Considering a mock catalog that includes tens of thousands of galaxy clusters, as expected from the forthcoming generation of surveys, we show that the effect of a varying baryonic mass fraction will be observable with high statistical significance. The net effect is a change in the overall normalization of the cluster mass function and a milder modification of its shape. Our results indicate the necessity of taking into account baryonic corrections to the mass function if one wants to obtain unbiased estimates of the cosmological parameters from data of this quality. We introduce the formalism necessary to accomplish this goal. Our discussion is based on the conditional probability of finding a given value of the baryonic mass fraction for clusters of fixed total mass. Finally, we show that combining information from the cluster counts with measurements of the baryonic mass fraction in a small subsample of clusters (including only a few tens of objects) will nearly optimally constrain the cosmological parameters.
11 pages, two figures, two tables. Published in JCAP
References in corpus (5)
- Effects of Baryons and Dissipation on the Matter Power Spectrum
- Stellar and total baryon mass fractions in groups and clusters since redshift 1
- The baryon fraction of LambdaCDM haloes
- Constraining Dark Energy with Clusters: Complementarity with Other Probes
- Dark and baryonic matter in the MareNostrum Universe
Cited by in corpus (6)
- How baryons can significantly bias cluster count cosmology
- The impact of baryonic physics on the abundance, clustering, and concentration of halos
- Exploring the cosmological synergy between galaxy cluster and cosmic void number counts
- An Introduction into the Theory of Cosmological Structure Formation
- Galaxy cluster aperture masses are more robust to baryonic effects than 3D halo masses
- The bias from hydrodynamic simulations: mapping baryon physics onto dark matter fields