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Laser-frequency stabilization using light shift in compact atomic clocks

delete2024-09-12
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OA
AI
C
Claudio Calosso
M
Michele Gozzelino *
F
Filippo Levi
S
Salvatore Micalizio
DOI:10.1103/PhysRevApplied.22.034033delete
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Abstract

Abstract

En 中文
This paper describes the light-shift laser-lock (LSLL) technique, an alternative method intended for laser-based compact atomic clocks. The technique greatly simplifies the laser setup by stabilizing the pumping-laser frequency to the same atoms involved in the clock operation, without the need of an external reference. By alternating two clock sequences, the method estimates and cancels out a controlled amount of induced light shift, acting on the laser frequency. The LSLL technique is compatible with state-of-the-art three-level clocks and was demonstrated with field-programmable-gate-array-based electronics on a pulsed-optically-pumped vapor-cell clock developed at INRIM. The results have shown that the LSLL technique operates robustly, having a capture range of gigahertz without significantly compromising clock stability. In our tests, the clock exhibited a white frequency noise of 3.2 x 10(-13)tau(-1/2) for averaging times tau up to 4000 s, reaching a floor below 1x10(-14) up to 100000 s. This level of performance meets the requirements of future global navigation satellite systems on-board clocks, adding the benefits of a reduced clock footprint, as well as increased reliability and robustness.
Keywords:
NOISE
SPECTROSCOPY
ELECTRONICS
STANDARD
CAVITY

Journal

Physical Review Applied cover
Physical Review Applied
IF:
4.4
Papers:
7.1K
Citations:
2.8W

Organization

I
istituto nazionale di ricerca metrologica (inrim)
Scholars:
1.1K
Papers: 926
Citations: 0