Kazakov, G., Dubey, S., Bychek, A., Sterr, U., Bober, M., & Zawada, M. (2022). Ultimate stability of active optical frequency standards. Physical Review A, 106(5), Article 053114. https://doi.org/10.1103/PhysRevA.106.053114
Bad-cavity laser; laser dynamics; quantum fluctuations and noise; atom lasers
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Abstract:
Active optical frequency standards provide interesting alternatives to their passive counterparts. Particularly, such a clock alone continuously generates highly stable narrow-line laser radiation. Thus, a local oscillator is not required to keep the optical phase during a dead time between interrogations as in passive clocks, but only to boost the active clock's low output power to practically usable levels with the current state of technology. Here we investigate the spectral properties and the stability of active clocks, including homogeneous and inhomogeneous broadening effects. We find that for short averaging times the stability is limited by photon shot noise from the limited emitted laser power and at long averaging times by phase diffusion of the laser output. Operational parameters for best long-term stability were identified. Using realistic numbers for an active clock with Sr⁸⁷, we find that optimized stability of σy(τ)≈4×10⁻¹⁸/√τ[s] is achievable.
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Project title:
Integrated Quantum Clock: 820404 (European Commission) Modular Systems for Advanced Integrated Quantum Clocks: 860579 (European Commission)
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Project (external):
European Comission and participated states
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Project ID:
EMPIR 17FUN03 USOQS
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Research Areas:
Quantum Modeling and Simulation: 40% Photonics: 30% Quantum Metrology and Precision Measurements: 30%