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Strongest Magnetically Induced Transitions in Alkali Metal Atoms with nuclear spin $3/2$

Atomic Physics 2022-03-23 v1

Abstract

The probabilities of atomic transitions FeFg=±2F_e - F_g = \pm 2 between a ground FgF_g and an excited FeF_e level of D2D_2 line of any alkali metal atom are zero when no external magnetic field is applied. In an external magnetic field in the range 0.130.1 - 3 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 ΔF=+2\Delta F = +2 are maximal when using σ+\sigma^+-polarized laser radiation, while the probabilities of MI transitions with ΔF=2\Delta F = -2 are maximal when using σ\sigma^--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 I=3/2I=3/2 (87Rb^{87}\text{Rb}, 39K^{39}\text{K},23Na^{23}\text{Na}, 7Li^7\text{Li}) in magnetic fields >100> 100 G, the probability of the strongest σ+\sigma^+ MI transition of the group Fg=1Fe=3F_g = 1 \rightarrow F_e = 3' (transition 1,13,0\ket{1,-1}\rightarrow\ket{3',0'}) is about 4 times higher than the probabilities of the strongest MI σ\sigma^--transitions 1,13,2\ket{1,-1}\rightarrow\ket{3',-2'} and 2,+10,0\ket{2,+1}\rightarrow \ket{0',0'}. These properties make the σ+\sigma^+ MI transition 1,13,0\ket{1,-1}\rightarrow\ket{3',0'} 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