Splitting Isotope Shift in the Fine-Structure Triplet in C: Experiment and Theory
arXiv:2510.13779 · doi:10.1103/24k3-r2gp
Abstract
We report measurements and theoretical calculations of the fine-structure splittings in all three transitions in the heliumlike systems of the isotopes C. The metastable triplet state was efficiently populated in an electron beam ion source and the C ions were electrostatically accelerated to 50\,keV to perform collinear laser spectroscopy. From the determined transition frequencies, the splitting isotope shift (SIS), i.e., the difference in fine-structure splittings between different isotopes of the same element, was extracted. In the SIS, theoretical uncertainties due to higher-order quantum electrodynamic corrections are strongly suppressed since they are independent of both nuclear mass and the fine-structure quantum number in lowest order. Comparison with theory provides an important test of experimental accuracy, particularly in the C case, for which the nuclear spin leads to hyperfine-induced fine-structure mixing. At the same time, the even-even isotopes C without nuclear spin can be used to confirm theory. Theoretical values of the SIS are given for all the heliumlike ions with .
References in corpus (10)
- Complete Lamb shift of helium triplet states
- QED calculations of energy levels of helium-like ions with
- Precision calculation of hyperfine structure and the Zemach radii of Li ions
- NRQED approach to the fine and hyperfine structure corrections of order and -- Application to the hydrogen atom
- Precision Test of Many-Body QED in the Be Fine Structure Doublet Using Short-Lived Isotopes
- Ab initio calculations of the transition in He-, Li-, and Be-like uranium
- Collinear Laser Spectroscopy of transitions in helium-like
- The nuclear charge radius of
- Quantum Electrodynamics in Strong Electromagnetic Fields: Substate Resolved K Transition Energies in Helium-like Uranium
- Collinear laser spectroscopy of highly charged ions produced with an electron beam ion source