paper

Constraining reionization morphology and source properties with 21cm galaxy cross-correlation surveys

arXiv:2601.18627 · doi:10.1051/0004-6361/202659152

Abstract

Cross-correlations between 21cm observations and galaxy surveys provide a powerful probe of reionization by providing robustness against foreground contamination while linking ionization morphology to galaxies. We quantified the constraining power of 21cm galaxy cross-power spectra for inferring the neutral hydrogen fraction, and mean overdensity, , exploring dependence on the field of view; redshift precision, ; and minimum halo mass, . We employed our simulation-based inference framework EoRFlow for likelihood-free parameter estimation. Mock observations include thermal noise for 100h of SKA-Low with foreground avoidance and realistic galaxy-survey effects. For a fiducial survey (, , ), cross-power spectra yield unbiased constraints with posterior volumes (PVs) of 10% relative to priors. Cross-power measurements reduce the PV by 20-30% versus 21cm auto-power alone. With foreground avoidance, spectroscopic redshift precision is essential; photometric redshifts render cross-correlations uninformative. Notably, cross-power spectra constrain ionizing source properties, the escape fraction and the star formation efficiency , which remain degenerate in auto-power (PV >60%). Tight constraints require either deep surveys detecting faint galaxies () with moderate foregrounds (PV~11%) or conservative mass limits with optimistic foreground removal (PV~19%). 21cm galaxy cross-correlations enhance morphology constraints beyond auto-power while enabling previously inaccessible source property constraints. Realizing full potential requires precise redshifts and either faint galaxy detection limits or improved 21cm foreground cleaning.

12 pages, 6 figures, accepted for publication in A&A

Constraining reionization morphology and source properties with 21cm galaxy cross-correlation surveys · wovepaper