Modelling the escape of Lyman Continuum photons from galaxies in the Epoch of Reionization
arXiv:2305.08199 · doi:10.1093/mnras/stad1844
Abstract
We couple the DELPHI framework for galaxy formation with a model for the escape of ionizing photons to study both its variability with galaxy assembly and the resulting key reionization sources. In this model, leakage either occurs through a fully ionized gas distribution (ionization bounded) or additionally through channels cleared of gas by supernova explosions (ionization bounded + holes). The escape fraction is therefore governed by a combination of the density and star formation rate. Having calibrated our star formation efficiencies to match high- observables, we find the central gas density to regulate the boundary between high () and low () escape fractions. As galaxies become denser at higher redshifts, this boundary shifts from at to at . While leakage is entirely governed through holes above this mass range, it is not affecting general trends for lower masses. We find the co-evolution of galaxy assembly and the degree of leakage to be mass and redshift dependent, driven by an increasing fraction of galaxies at increasing mass and redshift. The variability in the escape of ionizing photons is driven by the underlying variations in our dark matter assembly histories. Galaxies with provide half of the escaping ionizing emissivity by in the ionization bounded model. On the other hand, galaxies that purely leak through holes contribute at . We end by exploring the impact of two reionization feedback scenarios, in which we suppress the gas content of galaxies with and residing in ionized regions.
16 pages, 10 figures
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