Radiative Transfer Modeling of Lyman Alpha Emitters. I. Statistics of Spectra and Luminosity
Zheng Zheng (1,2), Renyue Cen (3), Hy Trac (4), Jordi Miralda-Escude, (5,6) ((1) Yale University, (2) Institute for Advanced Study, (3) Princeton, University, (4) Harvard-Smithsonian Center for Astrophysics, (5) Institucio, Catalana de Recerca i Estudis Avancats

TL;DR
This study models Lyman Alpha Emitters at z~5.7 using cosmological simulations and radiative transfer, explaining observed spectral and luminosity properties through photon diffusion and environmental effects.
Contribution
It introduces a radiative transfer framework that links intrinsic and observed Lya properties, explaining diverse LAE observations at high redshift.
Findings
Reproduces observed Lya spectra and luminosity functions.
Explains the low-luminosity turnover in UV luminosity functions.
Accounts for the distribution of Lya equivalent widths.
Abstract
We combine a cosmological reionization simulation with box size of 100Mpc/h on a side and a Monte Carlo Lyman-alpha (Lya) radiative transfer code to model Lyman Alpha Emitters (LAEs) at z~5.7. The model introduces Lya radiative transfer as the single factor for transforming the intrinsic Lya emission properties into the observed ones. Spatial diffusion of Lya photons from radiative transfer results in extended Lya emission and only the central part with high surface brightness can be observed. Because of radiative transfer, the appearance of LAEs depends on density and velocity structures in circumgalactic and intergalactic media as well as the viewing angle, which leads to a broad distribution of apparent (observed) Lya luminosity for a given intrinsic Lya luminosity. Radiative transfer also causes frequency diffusion of Lya photons. The resultant Lya line is asymmetric with a red…
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