Modeling Mg II resonance doublet spectra from galaxy haloes at z $\sim$ 1
Seok-Jun Chang, Rajeshwari Dutta, Max Gronke, Michele Fumagalli, Fabrizio Arrigoni Battaia, Matteo Fossati

TL;DR
This study models Mg II resonance spectra around star-forming galaxies at z~1 to understand cold gas properties and their dependence on galaxy mass, revealing mass-related differences in gas distribution and kinematics.
Contribution
It introduces a radiative transfer modeling approach for spatially varying Mg II spectra, linking cold gas properties to galaxy mass and outflow velocities at z~1.
Findings
Massive galaxies have more cold gas and extended Mg II emission.
Higher stellar mass correlates with higher Mg II column density and lower outflow velocity.
The cold gas distribution is anisotropic and includes intrinsic absorption features.
Abstract
We investigate the properties of cold gas at around star-forming galaxies at using Mg II spectra through radiative transfer modeling. We utilize a comprehensive dataset of 624 galaxies from the MAGG and MUDF programs. We focus on Mg II emission from galaxies and their outskirts to explore the cold gas within galaxies and the circumgalactic medium (CGM). We model Mg II spectra for 167 individual galaxies and stacked data for different stellar mass bins. The Mg II spectrum and surface brightness vary significantly with stellar mass. In low-mass galaxies (), Mg II emission is observed in both core ( 10 kpc) and halo regions (10 kpc 30 kpc), while in higher mass galaxies (), strong core absorption and more extended halo emission are prominent. This indicates that more massive galaxies have more cold…
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