Predictions for the Abundance of High-redshift Galaxies in a Fuzzy Dark Matter Universe
arXiv:1904.01604 · doi:10.1093/mnras/stz2085
Abstract
During the last decades, rapid progress has been made in measurements of the rest-frame ultraviolet (UV) luminosity function (LF) for high-redshift galaxies (). The faint-end of the galaxy LF at these redshifts provides powerful constraints on different dark matter models that suppress small-scale structure formation. In this work we perform full hydrodynamical cosmological simulations of galaxy formation using an alternative DM model composed of extremely light bosonic particles ( eV), also known as fuzzy dark matter (FDM), and examine the predictions for the galaxy stellar mass function and luminosity function at for a range of FDM masses. We find that for FDM models with bosonic mass eV, the number density of galaxies with stellar mass is suppressed by at z = 9, at z = 5, and the UV LFs within magnitude range of -16 < < -14 is suppressed by at , at comparing to the CDM counterpart simulation. Comparing our predictions with current measurements of the faint-end LFs (), we find that FDM models with are ruled out at confidence level. We expect that future LF measurements by James Webb Space Telescope (JWST), which will extend down to for , with a survey volume that is comparable to the Hubble Ultra Deep Field (HUDF) would have the capability to constrain FDM models to eV.