Abstract

We review three laser spectroscopy schemes developed recently for observation of high-contrast enhanced-absorption nonlinear resonances in small alkali-vapor cells. In our experiments, optical transitions within the cesium D1 line are involved and a probe beam transmission is analyzed. The first spectroscopy method is based on the configuration with two-frequency counter propagating beams, which are linearly polarized in orthogonal directions. This configuration provides observation of high-contrast natural-linewidth resonances superimposed on broad Doppler profiles when the laser frequency is scanned. These resonances have good prospects for developing a miniature optical frequency reference. The second scheme involves two-frequency counter propagating beams with equal circular polarizations and provides observation of subnatural-linewidth resonances when the Raman frequency detuning is scanned. We use these resonances for stabilizing the microwave frequency of a local oscillator (≈ 4.6 GHz). Frequency stability of around 6 × l0-12 is achieved at 1-s averaging using a 5-mm length cell. This result makes the technique attractive for developing a miniature frequency standard in thr microwave range. The third configuration exploits single-frequency counter-propagating beams with linear orthogonal polarizations. The ultrahigh-contrast subnatural-linewidth resonances can be observed when the longitudinal magnetic field is scanned around zero. The possible application is discussed of these resonances in vector atomic magnetometry.

Details

Title
Nonlinear enhanced-absorption resonances in compact alkali-vapor cells for applications in quantum metrology
Author
Brazhnikov, D V 1 ; Ignatovich, S M 2 ; Mesenzova, I S 2 ; Mikhailov, A M 1 ; Skvortsov, M N 2 ; Goncharov, A N 3 ; Entin, V M 4 ; Ryabtsev, I I 4 ; Boudot, R 5 ; Taskova, E 6 ; Alipieva, E 6 ; Andreeva, C 7 ; Gateva, S 6 

 Institute of Laser Physics, Siberian Branch, Russian Academy of Sciences, 15 B Lavrentyev Ave., 630090 Novosibirsk, Russia; Novosibirsk State University, 1 Pirogov Str., 630090 Novosibirsk, Russia 
 Institute of Laser Physics, Siberian Branch, Russian Academy of Sciences, 15 B Lavrentyev Ave., 630090 Novosibirsk, Russia 
 Institute of Laser Physics, Siberian Branch, Russian Academy of Sciences, 15 B Lavrentyev Ave., 630090 Novosibirsk, Russia; Novosibirsk State University, 1 Pirogov Str., 630090 Novosibirsk, Russia; Novosibirsk State Technical University, 20 Karl Marks Ave.,630073 Novosibirsk, Russia 
 Novosibirsk State University, 1 Pirogov Str., 630090 Novosibirsk, Russia; Institute of Semiconductor Physics Siberian Branch, Russian Academy of Sciences, 13 Lavrentyev Ave., 630090 Novosibirsk, Russia 
 FEMTO-ST, CNRS, UBFC, 26 rue de l’épitaphe, 25000 Besançon, France 
 Institute of Electronics, Bulgarian AS, 72 Tsarigradsko Chaussee blvd., 1784 Sofia, Bulgaria 
 Institute of Electronics, Bulgarian AS, 72 Tsarigradsko Chaussee blvd., 1784 Sofia, Bulgaria; Faculty of Physics, Sofia University “St. Kliment Ohridski”, 5 James Bourchier blvd., 1504 Sofia, Bulgaria 
Publication year
2021
Publication date
Mar 2021
Publisher
IOP Publishing
ISSN
17426588
e-ISSN
17426596
Source type
Scholarly Journal
Language of publication
English
ProQuest document ID
2511971470
Copyright
© 2021. This work is published under http://creativecommons.org/licenses/by/3.0/ (the “License”). Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License.