The Cosmic Ultraviolet Baryon Survey (CUBS) -- III. Physical properties and elemental abundances of Lyman limit systems at $z<1$
Fakhri S. Zahedy, Hsiao-Wen Chen, Thomas M. Cooper, Erin T. Boettcher,, Sean D. Johnson, Gwen C. Rudie, Mandy C. Chen, Sebastiano Cantalupo, Kathy L., Cooksey, Claude-Andr\'e Faucher-Gigu\`ere, Jenny E. Greene, Sebastian Lopez,, John S. Mulchaey, Steven V. Penton

TL;DR
This study analyzes the physical conditions and elemental abundances of Lyman-limit systems at redshifts below 1, revealing complex multi-phase gas structures, median metallicity around -0.7 dex, and diverse chemical enrichment histories.
Contribution
It provides detailed ionization modeling of LLSs at z<1, characterizing their physical properties, metallicities, and chemical diversity with high-quality spectral data.
Findings
LLSs exhibit multi-component, multiphase gas structures.
Median metallicity of cool-phase gas is approximately -0.7 dex.
Diverse elemental abundance ratios suggest varied chemical enrichment histories.
Abstract
(Abridged) We present a systematic investigation of physical conditions and elemental abundances in four optically thick Lyman-limit systems (LLSs) at discovered within the Cosmic Ultraviolet Baryon Survey (CUBS). CUBS LLSs exhibit multi-component kinematic structure and a complex mix of multiphase gas, with associated metal transitions from multiple ionization states that span several hundred km/s in line-of-sight velocity. Specifically, higher column density components (log N(HI)>16) in all four absorbers comprise dynamically cool gas with K and modest non-thermal broadening of km/s. The high quality of the QSO absorption spectra allows us to infer the physical conditions of the gas, using a detailed ionization modeling that takes into account the resolved component structures of HI and metal transitions. The range of…
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