arXiv · 1310.0200
Nuclear-size self-energy and vacuum-polarization corrections to the bound-electron g factor
Abstract
The finite nuclear-size effect on the leading bound-electron g factor and the one-loop QED corrections to the bound-electron g factor is investigated for the ground state of hydrogen-like ions. The calculation is performed to all orders in the nuclear binding strength parameter Z\alpha\ (where Z is the nuclear charge and \alpha\ is the fine structure constant) and for the Fermi model of the nuclear charge distribution. In the result, theoretical predictions for the isotope shift of the 1s bound-electron g factor are obtained, which can be used for the determination of the difference of nuclear charge radii from experimental values of the bound-electron g factors for different isotopes.
Explore related subjects
Keep this discovery
V. A. Yerokhin, C. H. Keitel, Z. Harman. 2013-10-01. Nuclear-size self-energy and vacuum-polarization corrections to the bound-electron g factor. https://doi.org/10.1088/0953-4075/46/24/245002
Cite the original work for its findings. Save a collection to share your selection of sources.