Thermal corrections to the bound-electron -factor
arXiv:2111.08811 · doi:10.1103/PhysRevA.105.012804
Abstract
The influence of the blackbody radiation field on the -factor of light hydrogenlike ions is considered within the framework of quantum electrodynamics at finite temperature for bound states. One-loop thermal corrections are examined for a wide range of temperatures. The numerical results for , , , and states are presented. It is shown that for excited states finite temperature corrections to the bound-electron -factor are close to the level of current experimental uncertainty even at room temperatures and can be discerned within the measurements anticipated in the near future.
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Cited by in corpus (4)
- Thermal radiative corrections to hyperfine structure of light hydrogen-like systems
- Combined two-loop self-energy corrections at finite and zero temperatures
- Thermal one-loop self-energy correction for hydrogen-like systems: Relativistic approach
- Radiative corrections to the level width in the presence of magnetic field