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BREIT AND QED EFFECTS IN SPECTRA OF THE 4s2 1S0-4s4p3P1,1P1 TRANSITIONS IN THE Zn SEQUENCE

Abstract

The 4s2-4s4p E1 transitions for Zn-like ions from Z in the range 30-92 are calculated using the multi-configuration Dirac-Hartree-Fock (MCDHF) method. The results obtained are in good agreement with other theoretical and experimental data and demonstrate the applicability of this method to high-precision atomic structure calculations of both few-electron systems and large atomic systems, such as Zn-like ions, along the entire isoelectronic sequence. We also report herein the calculations of many-electron quantum electrodynamic (QED) and Breit effects for the3P0,3P1, 3P2, and1P1 states for all Zn-like ions in the range 30 ≤ Z ≤ 100.

About the Authors

L. H. Hao
School of Electronic Communication Engineering, Hainan Tropical Ocean University
Russian Federation


J. J. Liu
School of Electronic Communication Engineering, Hainan Tropical Ocean University
Russian Federation


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Review

For citations:


Hao L.H., Liu J.J. BREIT AND QED EFFECTS IN SPECTRA OF THE 4s2 1S0-4s4p3P1,1P1 TRANSITIONS IN THE Zn SEQUENCE. Zhurnal Prikladnoii Spektroskopii. 2018;85(4):679(1)-679(8). (In Russ.)

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