Thermal radiative corrections to hyperfine structure of light hydrogen-like systems
arXiv:2210.08595 · doi:10.1103/PhysRevA.106.062808
Abstract
In this work, we consider the thermal correction to the hyperfine interaction in hydrogen, deuterium, and the He ion. This correction is effectively described by one-loop Feynman graphs in the framework of the quantum electrodynamics theory for bound states at a finite temperature. A simple analysis shows the importance of the obtained results for future prospects for measuring hyperfine splitting. In addition, the application for testing the time variation of fundamental constants is briefly discussed.
References in corpus (11)
- High-precision measurement of the atomic mass of the electron
- g factor of lithiumlike silicon 28Si11+
- Direct Bound-Electron factor Difference Measurement with Coupled Ions
- Ground-state hyperfine structure of H-, Li-, and B-like ions in middle-Z region
- -factor of Boronlike Argon
- Hyperfine structure of the first rotational level in H, D and HD molecules and the deuteron quadrupole moment
- Hyperfine structure of the state in Be and the nuclear quadrupole moment
- BBR-induced Stark shifts and level broadening in helium atom
- Two-photon atomic level widths at finite temperatures
- Recombination process for hydrogen atom in presence of blackbody radiation
- Thermal corrections to the bound-electron -factor