Assessment of the Fluorescence and Auger Data Base used in Plasma Modeling

Physics – Atomic Physics

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Scientific paper

Accurate fluorescence and Auger yields are crucial for the interpretation of spectra from X-ray photoionized plasmas (such as are found in X-ray binaries and active galactic nuclei) and for supernova remnants under conditions of non-equilibrium ionization. We have investigated the accuracy of the 1s-vacancy fluorescence and Auger data base of Kaastra & Mewe (1993, A&AS, 97, 443) resulting from the initial atomic physics calculations and the subsequent scaling along isoelectronic sequences. In particular, we have focused on the relatively simple Be-like and F-like 1s-vacancy sequences. We find that the earlier atomic physics calculations for the oscillator strengths and autoionization rates of singly-charged B II and Ne II are in sufficient agreement with our present calculations. However, the substantial charge dependence of these quantities along each isoelectronic sequence, the incorrect configuration averaging used for B II, and the neglect of relativistic effects (which become important at high-Z) all cast doubt on the reliability of the Kaastra & Mewe data for application to plasma modeling.
TWG, CNK, KTK, and OZ were supported by NASA Space Astrophysics Research and Analysis Program grant NAG5-10448. EB was supported by the Yigal-Alon Fellowship and by the GIF Foundation under grant #2028-1093.7/2001. The work of MHC was performed under the auspices of US Department of Energy by the University of California, Lawrence Livermore National Laboratory, Under Contract Number W-7405-ENG-48. DWS was supported in part by NASA Space Astrophysics Research and Analysis Program grant NAG5-5261 and NASA Solar Physics research, Analysis, and Suborbital Program grant NAG5-9581.

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