Electron-ion Recombination of Fe XII forming Fe XI: Laboratory Measurements and Theoretical Calculations
O. Novotn\'y, N. R. Badnell, D. Bernhardt, M. Grieser, M.Hahn, C., Krantz, M. Lestinsky, A. M\"uller, R. Repnow, S. Schippers, A. Wolf, D. W., Savin

TL;DR
This study combines laboratory measurements and theoretical calculations to accurately determine the electron-ion recombination rates of Fe XII forming Fe XI, revealing significant discrepancies with previous data and providing improved parameters for astrophysical models.
Contribution
The paper introduces a new experimental method for absolute recombination rate measurement and compares results with advanced theoretical calculations, highlighting important differences.
Findings
Measured recombination rates for Fe XII forming Fe XI from 0 to 1500 eV.
Identified significant underestimation in previous recombination data for astrophysical applications.
Provided a parameterized plasma recombination rate coefficient for use in models.
Abstract
We have measured electron-ion recombination for Fe XII forming Fe XI using a merged beams configuration at the heavy-ion storage ring TSR located at the Max Planck Institute for Nuclear Physics in Heidelberg, Germany. The measured merged beams recombination rate coefficient (MBRRC) for collision energies from 0 to 1500 eV is presented. This work uses a new method for determining the absolute MBRRC based on a comparison of the ion beam decay rate with and without the electron beam on. For energies below 75 eV, the spectrum is dominated by dielectronic recombination (DR) resonances associated with 3s-3p and 3p-3d core excitations. At higher energies we observe contributions from 3-N' and 2-N' core excitations DR. We compare our experimental results to state-of-the-art multi-configuration Breit-Pauli (MCBP) calculations and find significant differences, both in resonance energies and…
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