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Relativistic effects in the photoionization of Ne-like iron
Date Issued
01-01-1999
Author(s)
Haque, N.
Chakraborty, H. S.
Deshmukh, P. C.
Manson, S. T.
Msezane, A. Z.
Deb, N. C.
Felfli, Z.
Gorczyca, T. W.
Abstract
We demonstrate that much simpler techniques can reproduce the results of the full Breit-Pauli R-matrix method to include relativistic effects in photoionization calculations. To allow for the fine-structure splitting of channels in the photoionization of [Formula Presented] we have performed three sets of calculations. The first combined an [Formula Presented] R-matrix calculation with an [Formula Presented] frame transformation, using multichannel quantum defect theory. The second used a relativistic random phase approximation based on the Dirac equation. Both methods give resonant photoionization results nearly identical to those from a third calculation using the full Breit-Pauli R-matrix method. An accurate treatment of fine-structure splitting in [Formula Presented] is necessary to realistically include the [Formula Presented] resonances which dominate the low-energy photoionization cross section; consequently, in the inverse process of photorecombination, the low-temperature rate coefficient is dominated by the [Formula Presented] dielectronic recombination resonances. © 1999 The American Physical Society.
Volume
60