R-Matrix calculations for opacities.II. Photoionization and oscillator strengths of iron ions FeXVII, FeXVIII and FeXIX
S.N. Nahar, L. Zhao, W. Eissner, A.K. Pradhan

TL;DR
This paper presents extensive R-matrix calculations of photoionization and oscillator strengths for iron ions FeXVII, FeXVIII, and FeXIX, crucial for understanding stellar interior opacities and radiation transport.
Contribution
It provides the most comprehensive R-matrix atomic data for these ions, including high-lying resonances and core excitations, improving accuracy of opacity models.
Findings
Photoionization cross sections for all levels of FeXVII and FeXVIII obtained.
Strong Seaton PEC resonances significantly affect bound-free opacity.
Large target expansions enable convergence and detailed resonance features.
Abstract
Iron is the dominant heavy element that plays an important role in radiation transport in stellar interiors. Owing to its abundance and large number of bound levels and transitions, iron ions determine the opacity more than any other astrophysically abundant element. A few iron ions constitute the abundance and opacity of iron at the base of the convection zone (BCZ) at the boundary between the solar convection and radiative zones, and are the focus of the present study. Together, FeXVII, FeXVIII and FeXIX contribute 85\% of iron ion fractions 20\%, 39\% and 26\% respectively, at the BCZ physical conditions. We report heretofore the most extensive R-matrix atomic calculations for these ions for bound-bound and bound-free transitions, the two main processes of radiation absorption. We consider wavefunction expansions with 218 target or core ion fine structure levels of FeXVIII for…
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Taxonomy
TopicsSolar and Space Plasma Dynamics · Atmospheric Ozone and Climate · Stellar, planetary, and galactic studies
