Role of the phase-matching condition in non-degenerate four-wave mixing in hot vapors for the generation of squeezed states of light
arXiv:1303.7187 · doi:10.1103/PhysRevA.88.033845
Abstract
Non-degenerate forward four-wave mixing in hot atomic vapors has been shown to produce strong quantum correlations between twin beams of light [McCormick et al, Opt. Lett. 32, 178 (2007)], in a configuration which minimizes losses by absorption. In this paper, we look at the role of the phase-matching condition in the trade-off that occurs between the efficiency of the nonlinear process and the absorption of the twin beams. To this effect, we develop a semi-classical model by deriving the atomic susceptibilities in the relevant double-lambda configuration and by solving the classical propagation of the twin-beam fields for parameters close to those found in typical experiments. These theoretical results are confirmed by a simple experimental study of the nonlinear gain experienced by the twin beams as a function of the phase mismatch. The model shows that the amount of phase mismatch is key to the realization of the physical conditions in which the absorption of the twin beams is minimized while the cross-coupling between the twin beams is maintained at the level required for the generation of strong quantum correlations. The optimum is reached when the four-wave mixing process is not fully phase matched.
10 pages, 9 figures
References in corpus (7)
- Strong relative intensity squeezing by 4-wave mixing in Rb vapor
- Strong low-frequency quantum correlations from a four-wave mixing amplifier
- Absolute absorption on the rubidium D lines: comparison between theory and experiment
- Ultraslow propagation of matched pulses by four-wave mixing in an atomic vapor
- Relative intensity squeezing by four-wave mixing with loss: an analytic model and experimental diagnostic
- Double-lambda microscopic model for entangled light generation by four-wave-mixing
- Quantum correlations by four-wave mixing in an atomic vapor in a non-amplifying regime: a quantum beam splitter for photons
Cited by in corpus (29)
- Highly efficient coherent optical memory based on electromagnetically induced transparency
- Ultrasensitive measurement of MEMS cantilever displacement sensitivity below the shot noise limit
- Quantum Plasmonic Sensors
- Quantum-Enhanced Plasmonic Sensing
- Exchange of optical vortices using an electromagnetically induced transparency based four-wave mixing setup
- Complete energy conversion between light beams carrying orbital angular momentum using coherent population trapping for a coherently driven double-Λatom-light coupling
- Observation of localized multi-spatial-mode quadrature squeezing in four-wave mixing
- Generation of Rb-resonant bright two-mode squeezed light with four-wave mixing
- Quantum noise correlations of an optical parametric oscillator based on a non-degenerate four wave mixing process in hot alkali atoms
- Squeezed-twin-beam generation in strongly absorbing media
- Measuring kinetic parameters using quantum plasmonic sensing
- Optimal mode configuration for multiple phase-matched four-wave mixing processes
- Information encoding in the spatial correlations of entangled twin beams
- Compact sub-kilohertz low-frequency quantum light source based on four-wave mixing in cesium vapor
- Twin-beam intensity-difference squeezing below 10 Hz
- High nonclassical correlations of large-bandwidth photon pairs generated in warm atomic vapor
- Localizing an atom using Laguerre-Gaussian beams
- Degenerate four-wave mixing as a low-power source of squeezed light
- Correlation steering in the angularly multimode Raman atomic memory
- Bichromatic homodyne detection of broadband quadrature squeezing
- All-optical mode conversion via spatially-multimode four-wave mixing
- Phase matching alters spatial multiphoton processes in dense atomic ensembles
- Quantum beam splitter for orbital angular momentum of light: quantum correlation by four-wave mixing operated in a nonamplifying regime
- Ultimate conversion efficiency bound for the forward double- atom-light coupling scheme
- Two-beam Coupling in the Production of Quantum Correlated Images by Four-wave Mixing
- Characterizing micro-macro transitions with an atomic-vapor-based linear optical amplifier
- A novel two-mode squeezed light based on double-pump phase-matching
- Mode hitching in traveling-wave optical parametric amplification
- Room temperature caesium quantum memory for quantum information applications