On Atomic Line Opacities for Modeling Astrophysical Radiative Transfer

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ID: 314111
2026
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Abstract
Abstract In astrophysics, atomic transition line opacity is a primary source of uncertainty, leading to orders of magnitude discrepancy in theoretical calculations of radiative transfer in the literature. Much of this uncertainty is dominated by the inability to resolve the lines in frequency, leading to the use of approximate frequency-averaged treatments, often employing the ‘line-expansion formalism’. In this short paper we assess the usage of this formalism, specifically the prominent Eastman & Pinto 1993 formula (hereafter EP93). As a case study, we reproduce EP93 opacities from the commonly-used STELLA simulations in order to highlight the orders of magnitude effect due to the choice of line treatment. We show that the widely used EP93 expansion opacity substantially underestimates photon emissivity and reprocessing rates, even when it correctly captures photon mean-free-paths. We also highlight the importance of introducing micro-plasma electron excitation level cutoffs in the equation of state (EOS) for calculating opacity. We examine an alternative method for calculating emissivity based on a simple frequency-binned average of the lines, and introduce a physically-motivated modification that leads to a minor reduction in opacity. We note that a fully-consistent coarse-frequency solution does not currently exist for line modeling. Finally, we describe new features in our updated publicly available high-resolution frequency-dependent opacity table.
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openalex_W4414745515 Use this key to autocite in the manuscript while using SciMatic Manuscript Manager or Thesis Manager
Authors Jonathan Morag
Journal monthly notices of the royal astronomical society
Year 2026
DOI
10.1093/mnras/stag938
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