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Theory of the crossover from lasing to steady state superradiance

2 Pith papers cite this work. Polarity classification is still indexing.

2 Pith papers citing it
abstract

Lasing and steady state superradiance are two phenomena that may appear at first glance to be distinct. In a laser, phase information is maintained by a macroscopic intracavity light field, and the robustness of this phase is what leads to the coherence of the output light. In contrast, the coherence of steady-state superradiant systems derives from the macroscopic collective dipole of a many-atom ensemble. In this paper, we develop a quantum theory that connects smoothly between these two extreme limits. We show that lasing and steady-state superradiance should be thought of as the two extreme limits of a continuous crossover. The properties of systems that lie in the superradiance, lasing, and crossover parameter regions are compared. We find that for a given output intensity a narrower linewidth can be obtained by operating closer to the superradiance side of the crossover. We also find that the collective phase is robust against cavity frequency fluctuations in the superradiant regime and against atomic level fluctuations in the lasing regime.

years

2026 1 2019 1

representative citing papers

Instabilities of the continuous superradiant laser

quant-ph · 2026-06-19 · unverdicted · novelty 6.0

A continuous superradiant laser develops instabilities and chaotic behavior when photon lifetime in the cavity is significantly shorter than atomic lifetime, with a derived criterion and mean-field mapping to Bénard instability modified by quantum fluctuations.

citing papers explorer

Showing 2 of 2 citing papers.

  • Instabilities of the continuous superradiant laser quant-ph · 2026-06-19 · unverdicted · none · ref 18 · internal anchor

    A continuous superradiant laser develops instabilities and chaotic behavior when photon lifetime in the cavity is significantly shorter than atomic lifetime, with a derived criterion and mean-field mapping to Bénard instability modified by quantum fluctuations.

  • Squeezed state metrology with Bragg interferometers operating in a cavity physics.atom-ph · 2019-07-23 · conditional · none · ref 30 · internal anchor

    Theoretical proposal for cavity-based momentum-state spin squeezing in Bragg interferometers that models momentum width and off-manifold coupling and predicts feasible squeezing levels with current technology.