Relatively Fast and Reasonably Furious: Evidence for Increased Burstiness in Smaller Halos at Cosmic Dawn
arXiv:2601.07912 · doi:10.1093/mnras/stag415
Abstract
We introduce an effective framework to model star-formation burstiness and use it to jointly fit galaxy UV luminosity functions (UVLFs), clustering, and H/UV ratios, providing the first robust empirical evidence that early galaxies hosted in lower-mass halos are burstier. Using observations, we find that galaxies show approximately dex of SFR variability if hosted in halos of (typical of galaxies at ). This translates into a scatter of mag in the UVLF, in line with past findings. Strikingly, we find that burstiness grows for galaxies hosted in smaller halos, reaching dex for (corresponding to mag for faint galaxies). Extrapolating to higher redshifts, when small halos were more prevalent, the inferred mass-dependent burstiness can reproduce observed UVLFs up to within 1, potentially alleviating the tension between pre- and post-JWST galaxy-formation models. Current observations allow us to constrain the main burst timescale to approximately Myr, consistent with expectations from supernova feedback, and suggest broad distributions of ionizing efficiencies at fixed . Our results demonstrate that mass-dependent burstiness, as predicted by hydrodynamical simulations, is critical for understanding the mass assembly of early galaxies.
18+13 pages, 17+12 figures. Updated to match accepted version