Negative-energy contributions to transition amplitudes in heliumlike ions

A. Derevianko, Igor M. Savukov, W. R. Johnson, and D. R. Plante
Phys. Rev. A 58, 4453 – Published 1 December 1998
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Abstract

We derive the leading term in an αZ expansion for the negative-energy (virtual electron-positron pair) contributions to the transition amplitudes of heliumlike ions. The resulting expressions allow us to perform a general analysis of the negative-energy contributions to electric- and magnetic-multipole transition amplitudes. We observe a strong dependence on the choice of the zeroth-order Hamiltonian, which defines the negative-energy spectrum. We show that for transitions between states with different values of total spin, the negative-energy contributions calculated in a Coulomb basis vanish in the leading order while they remain finite in a Hartree basis. The ratio of negative-energy contributions to the total transition amplitudes for some of nonrelativistically forbidden transitions is shown to be of order 1/Z. In the particular case of the magnetic-dipole transition 33S123S1, we demonstrate that the neglect of negative-energy contributions, in an otherwise exact no-pair calculation, would lead one to underestimate the decay rate in helium by a factor of 1.5 in calculations using a Hartree basis and by a factor of 2.9 using a Coulomb basis. Finally, we tabulate revised values of the line strength S for the magnetic-quadrupole (M2) transition 23P211S0. These values include negative-energy contributions from higher partial waves, which were neglected in our previous calculations.

  • Received 19 May 1998

DOI:https://doi.org/10.1103/PhysRevA.58.4453

©1998 American Physical Society

Authors & Affiliations

A. Derevianko, Igor M. Savukov, and W. R. Johnson

  • Department of Physics, Notre Dame University, Notre Dame, Indiana 46556

D. R. Plante

  • Department of Mathematics & Computer Science, Stetson University, DeLand, Florida 32720

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Issue

Vol. 58, Iss. 6 — December 1998

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