Dielectronic recombination of highly ionized iron

Abstract
Dielectronic recombination of the iron ions Fe15+, Fe23+, and Fe25+ has been studied in the isolated-resonance, distorted-wave approximation. The cross-section calculations include the dielec- tronic transitions associated with the 3s→3l and 3s→4l excitations in Fe15+, the 2s→2p and 2s→3l excitations in Fe23+, and the 1s→2l excitations in Fe25+. The effects of external electric fields have been included by employing intermediate-coupled, field-mixed eigenvectors for the doubly excited Rydberg states, determined by diagonalizing a Hamiltonian matrix which includes the internal electrostatic and spin-orbit terms, as well as the Stark matrix elements. The field effects are found to be quite large in Fe15+, relatively small in Fe23+, and negligible in Fe25+. The calculations indicate that there are large resonances near threshold in Fe23+ that are unaffected by external fields and may be measurable in new experiments currently being designed. In addition, the contributions of radiative recombination and the possible interference between radiative and dielectronic recombination in low-lying resonances are considered. Even though the radiative recombination cross sections may be appreciable near threshold in Fe15+ and Fe23+, the interference between these processes appears to be completely negligible.