A new model framework for circumgalactic Ly radiative transfer constrained by galaxy-Ly forest clustering
arXiv:1710.10053 · doi:10.1093/mnras/sty2214
Abstract
We present a new perturbative approach to "constrained Ly radiative transfer'" (RT) through the circum- and inter-galactic medium (CGM and IGM). We constrain the HI content and kinematics of the CGM and IGM in a physically motivated model, using the galaxy-Ly forest clustering data from spectroscopic galaxy surveys in QSO fields at . This enables us to quantify the impact of the CGM/IGM on Ly emission in an observationally constrained, realistic cosmological environment. Our model predicts that the CGM and IGM at these redshifts transmit of Ly photons after having escaped from galaxies. This implies that while the inter-stellar medium primarily regulates Ly escape, the CGM has a non-negligible impact on the observed Ly line properties and the inferred Ly escape fraction, even at . Ly scattering in the CGM and IGM further introduces an environmental dependence in the (apparent) Ly escape fraction, and the observed population of Ly emitting galaxies: the CGM/IGM more strongly suppresses direct Ly emission from galaxies in overdense regions in the Universe, and redistributes this emission into brighter Ly haloes. The resulting mean surface brightness profile of the Ly haloes is generally found to be a power-law . Although our model still contains arbitrariness, our results demonstrate how (integral field) spectroscopic surveys of galaxies in QSO fields constrain circumgalactic Ly RT, and we discuss the potential of these models for studying CGM physics and cosmology.
20 pages, 14 figures, the version accepted in MNRAS
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