The Effects of X-Ray and UV Background Radiation on the Low-Mass Slope of the Galaxy Mass Function
arXiv:1009.6005 · doi:10.1111/j.1365-2966.2011.18312.x
Abstract
Even though the dark-matter power spectrum in the absence of biasing predicts a number density of halos n(M) ~ M^-2 (i.e. a Schechter alpha value of -2) at the low-mass end (M < 10^10 M_solar), hydrodynamic simulations have typically produced values for stellar systems in good agreement with the observed value alpha ~ -1. We explain this with a simple physical argument and show that an efficient external gas-heating mechanism (such as the UV background included in all hydro codes) will produce a critical halo mass below which halos cannot retain their gas and form stars. We test this conclusion with GADGET-2-based simulations using various UV backgrounds, and for the first time we also investigate the effect of an X-ray background. We show that at the present epoch alpha is depends primarily on the mean gas temperature at the star-formation epoch for low-mass systems (z <~ 3): with no background we find alpha ~ -1.5, with UV only alpha ~ -1.0, and with UV and X-rays alpha ~ -0.75. We find the critical final halo mass for star formation to be ~4x10^8 M_solar with a UV background and ~7x10^8 M_solar with UV and X-rays.
9 pages, 4 figures in mn2e style; submitted to MNRAS
References in corpus (18)
- The hierarchical formation of the brightest cluster galaxies
- An Observational Determination of the Bolometric Quasar Luminosity Function
- The Kinematics of the Ultra-Faint Milky Way Satellites: Solving the Missing Satellite Problem
- The synthesis of the cosmic X-ray background in the Chandra and XMM-Newton era
- Cats and Dogs, Hair and A Hero: A Quintet of New Milky Way Companions
- A New Calculation of the Ionizing Background Spectrum and the Effects of HeII Reionization
- Cosmological Simulations of Intergalactic Medium Enrichment from Galactic Outflows
- The stellar mass assembly of galaxies from z=0 to z=4. Analysis of a sample selected in the rest-frame near-infrared with Spitzer
- Forming Disk Galaxies in Lambda CDM Simulations
- Massloss of galaxies due to a UV-background
- Effects of Supernova Feedback on the Formation of Galaxy Disks
- The dependence of Star Formation on Galaxy Stellar Mass
- Feedback and the Structure of Simulated Galaxies at redshift z=2
- The baryon fraction of LambdaCDM haloes
- The origin of failed subhaloes and the common mass scale of the Milky Way satellite galaxies
- The Fate of the First Galaxies. III. Properties of Primordial Dwarf Galaxies and their Impact on the Intergalactic Medium
- Photo-heating and supernova feedback amplify each other's effect on the cosmic star formation rate
- A Flexible Method of Estimating Luminosity Functions
Cited by in corpus (15)
- Galactic star formation and accretion histories from matching galaxies to dark matter haloes
- Forming Early-Type Galaxies in LambdaCDM Simulations -I. Assembly histories
- Feedback reshapes the baryon distribution within haloes, in halo outskirts, and beyond: the closure radius from dwarfs to massive clusters
- SatGen: a semi-analytical satellite galaxy generator -- I. The model and its application to Local-Group satellite statistics
- Spatially adaptive radiation-hydrodynamical simulations of galaxy formation during cosmological reionization
- A physical model for the evolving UV luminosity function of high redshift galaxies and their contribution to the cosmic reionization
- Time-Dependent Cooling in Photoionized Plasma
- Physical properties of simulated galaxy populations at z=2 - II. Effects of cosmology, reionization and ISM physics
- The Effects of X-Ray Feedback from AGN on Host Galaxy Evolution
- The Contribution of Supernovae to Cosmic Reionization
- Dark matter halos in the multicomponent model. I. Substructure
- Evolution of the baryon fraction in the Local Group: accretion versus feedback at low and high z
- Estimates for the impact of Ultraviolet Background fluctuations on galaxy clustering measurements
- Leaving the dark ages with AMIGA
- An Estimate of the Impact of Reionization on Supermassive Black Hole Growth