Tracking ionization balance in intergalactic medium and its implications towards metallicity
Bhaskar Arya, Kartick C. Sarkar, Shiv K. Sethi

TL;DR
This paper introduces a fast, metals-inclusive model for tracking the ionization and thermal evolution of the intergalactic medium, aiding interpretation of quasar absorption spectra and metal-line observations.
Contribution
It presents a new zero-dimensional framework that accurately models IGM ionization and temperature evolution, validated against complex hydrodynamical simulations.
Findings
The model reproduces IGM thermal and ionization histories with good accuracy.
Predicted cosmic C IV density parameter aligns with observational constraints.
Framework enables rapid exploration of reionization and UVB effects on IGM properties.
Abstract
Ionization balance in the intergalactic medium (IGM) is central to the interpretation of quasar absorption spectra, linking observed ionic columns to the underlying gas density, temperature, metallicity, and ionizing radiation field. Because ionization, recombination, and cooling timescales can be comparable to the timescales over which the ultraviolet background (UVB) and gas thermodynamic state evolve, ion populations may retain a strong memory of their past history. To this end, we present a fast, metals-inclusive, zero-dimensional framework for modeling the redshift evolution of the IGM. The model follows the coupled thermal and ionization evolution of a Lagrangian gas parcel in a redshift-dependent UVB, solving stiff, time-dependent rate equations for H, He, and 107 metal ions while self-consistently evolving the temperature through photoheating and standard cooling processes. We…
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