DocumentCode :
271249
Title :
Dick effect in a pulsed atomic clock using coherent population trapping
Author :
Danet, Jean-Marie ; Lours, M. ; Guérandel, Stéphane ; De Clercq, E.
Author_Institution :
LNE-SYRTE, Univ. Pierre et Marie Curie (UPMC), Paris, France
Volume :
61
Issue :
4
fYear :
2014
fDate :
Apr-14
Firstpage :
567
Lastpage :
574
Abstract :
The Dick effect can be a limitation of the achievable frequency stability of a passive atomic frequency standard when the ancillary frequency source is only periodically sampled. Here, we analyze the Dick effect for a pulsed vapor cell clock using coherent population trapping (CPT). Because of its specific interrogation process without atomic preparation nor detection outside of the Ramsey pulses, it exhibits an original shape of the sensitivity function to phase noise of the oscillator. Numerical calculations using a three-level atom model are successfully compared with measurements; an approximate formula of the sensitivity function is given as an easy-to-use tool. A comparison of our CPT clock sensitivity to phase noise with a clock of the same duty cycle using a twolevel system reveals a higher sensitivity in the CPT case. The influence of a free-evolution time variation and of a detection duration lengthening on this sensitivity is studied. Finally, this study permitted the choice of an adapted quartz oscillator and allowed an improvement of the clock fractional frequency stability at the level of 3.2 x 10-13 at 1 s.
Keywords :
atom-photon collisions; atomic clocks; dark states; frequency measurement; measurement standards; CPT clock phase noise sensitivity; Dick effect; clock fractional frequency stability; coherent population trapping; detection duration lengthening; duty cycle; free evolution time variation; oscillator phase noise; passive atomic frequency standard; periodically sampled ancillary frequency source; pulsed atomic clock; pulsed vapor cell clock; quartz oscillator; sensitivity function shape; three level atom model; two level system; Atomic clocks; Laser stability; Phase noise; Sensitivity; Shape;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2014.2945
Filename :
6822984
Link To Document :
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