Highly Excited Core Resonances in Photoionization of Fe XVII : Implications for Plasma Opacities
Sultana N. Nahar (1), Anil K. Pradhan (1), Guo-Xin Chen (2), Werner, Eissner (3) ((1) The Ohio State University, (2) ITAMP, Harvard-Smithsonian, Center for Astrophysics, (3) Institut fur Theoretische Physik, Stuttgart, (Germany))

TL;DR
This study provides high-accuracy photoionization cross sections for Fe XVII, revealing strong core resonances that significantly impact plasma opacity calculations, with implications for astrophysical and laboratory plasma modeling.
Contribution
It introduces comprehensive relativistic Breit-Pauli R-matrix calculations including n=3 levels, improving upon previous underestimations of cross sections and emphasizing the importance of core resonances for plasma opacity.
Findings
Resonance enhancements increase cross sections by orders of magnitude.
Current data underestimates bound-free cross sections compared to previous models.
Expanded role of inner-shell excitations in plasma opacity calculations.
Abstract
A comprehensive study of high-accuracy photoionization cross sections is carried out using the relativistic Breit-Pauli R-matrix (BPRM) method for (hnu + Fe XVII --> Fe XVIII + e). Owing to its importance in high-temperature plasmas the calculations cover a large energy range, particularly the myriad photoexciation-of-core (PEC) resonances including the n = 3 levels not heretofore considered. The calculations employ a close coupling wave function expansion of 60 levels of the core ion Fe XVIII ranging over a wide energy range of nearly 900 eV between the n = 2 and n = 3 levels. Strong coupling effects due to dipole transition arrays 2p^5 --> 2p^4 (3s,3d) manifest themselves as large PEC resonances throughout this range, and enhance the effective photoionization cross sections orders of magnitude above the background. Comparisons with the erstwhile Opacity Project (OP) and other previous…
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