New Measurement Resolves Key Astrophysical Fe XVII Oscillator Strength Problem
Abstract
One of the most enduring and intensively studied problems of X-ray astronomy is the disagreement of state-of-the art theory and observations for the intensity ratio of two Fe XVII transitions of crucial value for plasma diagnostics, dubbed 3C and 3D. We unravel this conundrum at the PETRA III synchrotron facility by increasing the resolving power two and a half times and the signal-to-noise ratio thousand-fold compared to our previous work. The Lorentzian wings had hitherto been indistinguishable from the background and were thus not modeled, resulting in a biased line-strength estimation. The present experimental oscillator-strength ratio agrees with our state-of-the-art calculation of , as well as with some previous theoretical predictions. To further rule out any uncertainties associated with the measured ratio, we also determined the individual natural linewidths and oscillator strengths of 3C and 3D transitions, which also agree well with the theory. This finally resolves the decades-old mystery of Fe XVII oscillator strengths.
Cite
@article{arxiv.2201.09070,
title = {New Measurement Resolves Key Astrophysical Fe XVII Oscillator Strength Problem},
author = {Steffen Kühn and Charles Cheung and Natalia S. Oreshkina and René Steinbrügge and Moto Togawa and Sonja Bernitt and Lukas Berger and Jens Buck and Moritz Hoesch and Jörn Seltmann and Florian Trinter and Christoph H. Keitel and Mikhail G. Kozlov and Sergey G. Porsev and Ming Feng Gu and F. Scott Porter and Thomas Pfeifer and Maurice A. Leutenegger and Zoltán Harman and Marianna S. Safronova and José R. Crespo López-Urrutia and Chintan Shah},
journal= {arXiv preprint arXiv:2201.09070},
year = {2022}
}
Comments
Main manuscript and supplemental material at https://journals.aps.org/prl/supplemental/10.1103/PhysRevLett.129.245001/LN17392_Supplemental_Material.pdf