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arXiv · 1701.05504

Correlation, Breit and Quantum Electrodynamics effects on energy level and transition properties of W$^{54+}$ ion

Abstract

The electron correlation effects and Breit interaction as well as Quantum Electro-Dynamics (QED) effects were expected to have important contribution to the energy level and transition properties of heavy highly charged ions. The ground states [Ne]$3s^{2}3p^{6}3d^{2}$ and first excited states [Ne]3s$^{2}3p^{5}3d^{3}$ of W$^{54+}$ ion have been studied by using Multi-Configuration Dirac-Fock method with the implementation of Grasp2K package. A restricted active space was employed to investigate the correlation contribution from different models. The Breit interaction and QED effects were taken into account in the relativistic configuration interaction calculation with the converged wavefunction. It is found that the correlation contribution from 3s and 3p orbital have important contribution to the energy level, transition wavelength and probability of the ground and the first excited state of W$^{54+}$ ion.

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XiaoBin Ding, Rui Sun, Fumihiro Koike, Daiji Kato, Izumi Murakami, Hiroyuki A Sakaue, Chenzhong Dong. 2017-01-19. Correlation, Breit and Quantum Electrodynamics effects on energy level and transition properties of W$^{54+}$ ion. https://doi.org/10.1140/epjd%2Fe2017-70829-y

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