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JOURNALS // Optics and Spectroscopy // Archive

Optics and Spectroscopy, 2020 Volume 128, Issue 1, Pages 16–23 (Mi os490)

This article is cited in 3 papers

Spectroscopy and physics of atoms and molecules

The use of magnetically induced transitions of $^{87}$Rb atoms in coherent optical processes

A. Sargsyana, T. A. Vartanyanb, D. Sarkisyana

a Institute for Physical Research NAS of Armenia, Ashtarak, Armenia
b St. Petersburg National Research University of Information Technologies, Mechanics and Optics

Abstract: We experimentally demonstrated that magnetically induced (MI) $F_{g}=1\to F_{e}$ = 3 transitions of the D$_2$-line of $^{87}$Rb are promising for the generation of optical resonances in strong magnetic fields of up to 3 kG. A cell of micron-scale thickness filled with Rb vapors was used. A simple and convenient method of determining magnetic induction that exhibits micron-scale spatial resolution is described. In the process, it becomes unnecessary using a reference spectrum. The probability of an MI transition in the interval of magnetic fields from 0.3 to 2 kG can exceed the probability of an ordinary atomic transition, which makes using it as a coupling or probe transition in $\Lambda$- or V-systems advantageous for formation of dark resonances in processes of electromagnetically induced transparency (EIT). Dark resonances shifted in strong magnetic fields by as much as 10 GHz may find a number of practical applications. Note that dark resonances are nearly absent in $\Lambda$-systems based on ordinary atomic transitions in magnetic fields exceeding 1 kG.

Keywords: magnetically induced transitions, hyperfine structure, D$_2$ line of 87Rb, microcell.

Received: 16.09.2019
Revised: 16.09.2019
Accepted: 23.09.2019

DOI: 10.21883/OS.2020.01.48833.259-19


 English version:
Optics and Spectroscopy, 2020, 128:1, 12–20

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© Steklov Math. Inst. of RAS, 2024