Dubey, S., Kazakov, G. A., Heizenreder, B., Zhou, S., Bennetts, S., Schäffer, S. A., Sitaram, A., & Schreck, F. (2025). Modeling of a continuous superradiant laser on the sub-mHz 1S₀→3P₀ transition in neutral strontium-88. Physical Review Research (PRResearch), 7(1), Article 013292. https://doi.org/10.1103/PhysRevResearch.7.013292
Atomic optical clocks; Quantum optics; Superradiance & subradiance; Ultracold collisions; Atomic ensemble; Laser systems; Trapped atoms; Polarizability; Atom & ion cooling; Atom & ion trapping & guiding; Cavity resonators; Jaynes-Cummings model; Lindblad equation; Mean-field & cluster methods; Optical pumping; Quantum Monte Carlo; Semiclassical methods
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Abstract:
Continuous superradiance using a narrow optical transition has the potential to improve the short-term stability of state-of-the-art optical clocks. Even though pulsed superradiant emission on a mHz linewidth clock transition has been shown, true continuous operation, without Fourier limitation, has turned out to be extremely challenging. The trade-off between maintaining a high atomic flux while minimizing decoherence effects presents a significant obstacle. Here, we discuss the design of a machine that could overcome this problem by combining a high-flux continuous beam of ultracold strontium atoms with a bowtie cavity for the generation of superradiant lasing. To evaluate the feasibility of our design, we present simulation results for continuous high-efficiency cooling, loading, and pumping to the upper lasing state inside the bowtie cavity. We then present two different models for simulating the generated superradiant field by taking into account position-dependent shifts, collisional decoherence, light shifts, and atom loss. Finally, we estimate a laser linewidth of less than 100mHz, limited by atom number fluctuations, resulting in an output power of hundreds of fW.
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Research facilities:
Vienna Scientific Cluster
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Project title:
Modular Systems for Advanced Integrated Quantum Clocks: 860579 (European Commission) Integrated Quantum Clock: 820404 (European Commission) Thorium nuclear clocks for fundamental tests of physics: 856415 (European Commission)
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Project (external):
Dutch National Growth Fund
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Project ID:
Quantum Delta NL programme
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Research Areas:
Quantum Modeling and Simulation: 50% Photonics: 20% Quantum Metrology and Precision Measurements: 30%