Fe XVII X-ray Line Ratios for Accurate Astrophysical Plasma Diagnostics
J. D. Gillaspy, T. Lin, L. Tedesco, J. N. Tan, J. M. Pomeroy, J. M., Laming, N. Brickhouse, G.-X. Chen, and E. Silver

TL;DR
This study provides new laboratory measurements and theoretical predictions for Fe XVII X-ray line ratios, enhancing the accuracy of astrophysical plasma diagnostics by addressing previous uncertainties and experimental variations.
Contribution
It offers improved laboratory measurements and theoretical models for Fe XVII line ratios, ensuring better consistency and reliability for astrophysical plasma diagnostics.
Findings
Line ratios agree within 10% with theory
Experimental results align with previous measurements within 20%
Resonance effects influence spectral line intensities
Abstract
New laboratory measurements using an Electron Beam Ion Trap (EBIT) and an x-ray microcalorimeter are presented for the n=3 to n=2 Fe XVII emission lines in the 15 {\AA} to 17 {\AA} range, along with new theoretical predictions for a variety of electron energy distributions. This work improves upon our earlier work on these lines by providing measurements at more electron impact energies (seven values from 846 to 1185 eV), performing an in situ determination of the x-ray window transmission, taking steps to minimize the ion impurity concentrations, correcting the electron energies for space charge shifts, and estimating the residual electron energy uncertainties. The results for the 3C/3D and 3s/3C line ratios are generally in agreement with the closest theory to within 10%, and in agreement with previous measurements from an independent group to within 20%. Better consistency between…
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