Multicomponent H2 in DLA at zabs = 2.05: physical conditions through observations and numerical models
Katherine Rawlins, Raghunathan Srianand, Gargi Shaw, Hadi Rahmani,, Rajeshwari Dutta, Sajeev Chacko

TL;DR
This study combines spectroscopic observations and numerical modeling to analyze the physical conditions of a molecular-rich damped Lyman-alpha absorber at redshift 2.05, revealing details about its structure, composition, and environment.
Contribution
It provides a detailed, component-wise analysis of an H2-bearing DLA using combined observational and modeling approaches, which is novel in understanding its physical conditions.
Findings
DLA metallicity is 0.3 Z_sun with dust-to-gas ratio of 0.34.
Inner molecular regions have densities of 30-120 cm^-3 and temperatures of 140-360 K.
H2-bearing regions are about 7.2 parsecs thick.
Abstract
We perform detailed spectroscopic analysis and numerical modelling of an H2-bearing damped Lyman-alpha absorber (DLA) at zabs = 2.05 towards the quasar FBQS J2340-0053. Metal absorption features arise from fourteen components spread over = 114 km s, seven of which harbour H2. Column densities of atomic and molecular species are derived through Voigt profile analysis of their absorption lines. We measure total N(H I), N(H2) and N(HD) to be 20.35+/-0.05, 17.99+/-0.05 and 14.28+/-0.08 (log cm) respectively. H2 is detected in the lowest six rotational levels of the ground vibrational state. The DLA has metallicity, Z = 0.3 Z ([S/H] = -0.52+/-0.06) and dust-to-gas ratio, = 0.34+/-0.07. Numerical models of the H2 components are constrained individually to understand the physical structure of the DLA. We conclude that the DLA is subjected to the…
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