Strongest Magnetically Induced Transitions in Alkali Metal Atoms with nuclear spin $3/2$
Abstract
The probabilities of atomic transitions between a ground and an excited level of line of any alkali metal atom are zero when no external magnetic field is applied. In an external magnetic field in the range kG, the probabilities of these transitions called magnetically induced (MI) are highly modified. For these MI transitions, we have previously exhibited the following rule: the probabilities of MI transitions with are maximal when using -polarized laser radiation, while the probabilities of MI transitions with are maximal when using -polarized laser radiation. This difference has been termed Type 1 Magnetically Induced Circular Dichroism (MCD1). It is demonstrated for the first time that for alkali atoms with a nuclear spin (, ,, ) in magnetic fields G, the probability of the strongest MI transition of the group (transition ) is about 4 times higher than the probabilities of the strongest MI -transitions and . These properties make the MI transition an interesting candidate for the study of magneto-optical processes in strong magnetic fields.
Keywords
Cite
@article{arxiv.2112.07351,
title = {Strongest Magnetically Induced Transitions in Alkali Metal Atoms with nuclear spin $3/2$},
author = {Armen Sargsyan and Ara Tonoyan and Rodolphe Momier and Claude Leroy and David Sarkisyan},
journal= {arXiv preprint arXiv:2112.07351},
year = {2022}
}
Comments
7 pages, 6 figures