English

Hyperfine interaction in the Autler-Townes effect II: control of two-photon selection rules in the Morris-Shore basis

Atomic Physics 2023-12-27 v2 Quantum Physics

Abstract

We investigated the absence of certain bright peaks in Autler-Townes laser excitation spectra of alkali metal atoms. Our research revealed that these dips in the spectra are caused by a specific architecture of adiabatic (or ``laser-dressed'') states in hyperfine (HF) components. The dressed states' analysis pinpointed several cases where constructive and destructive interference between HF excitation pathways in a two-photon excitation scheme limits the available two-photon transitions. This results in a reduction of the conventional two-photon selection rule for the total angular momentum FF, from ΔF=0,±1\Delta F= 0,\pm 1 to ΔF0\Delta F\equiv 0. Our discovery presents practical methods for selectively controlling the populations of unresolvable HF FF-components of ns1/2ns_{1/2} Rydberg states in alkali metal atoms. Using numerical simulations with sodium and rubidium atoms, we demonstrate that by blocking the effects of HF interaction with a specially tuned auxiliary control laser field, the deviations from the ideal selectivity of the HF components population can be lower than 0.01%0.01\% for Na and 0.001%0.001\% for Rb atoms.

Keywords

Cite

@article{arxiv.2312.02801,
  title  = {Hyperfine interaction in the Autler-Townes effect II: control of two-photon selection rules in the Morris-Shore basis},
  author = {Arturs Cinins and Dmitry K. Efimov and Martins Bruvelis and Kaspars Miculis and Teodora Kirova and Nikolai N. Bezuglov and Igor I. Ryabtsev and Marcis Auzinsh and Aigars Ekers},
  journal= {arXiv preprint arXiv:2312.02801},
  year   = {2023}
}

Comments

20 pages, 14 figures, to be submitted to PRA. Changelog: * added missing ORCID iDs; * Notation used in figures 4,6 is now consistent with the rest of the manuscript: Pump paser -> S-laser; * corrected typos, more precise language througout the paper; * improved legibility of labels in figures 4-8