Onset of non-Gaussian quantum physics in pulsed squeezing with mesoscopic fields
arXiv:2111.13799 · doi:10.1364/OPTICA.447782
Abstract
We study the emergence of non-Gaussian quantum features in pulsed squeezed light generation with a mesoscopic number (i.e., dozens to hundreds) of pump photons. Due to the strong optical nonlinearities necessarily involved in this regime, squeezing occurs alongside significant pump depletion, compromising the predictions made by conventional semiclassical models for squeezing. Furthermore, nonlinear interactions among multiple frequency modes render the system dynamics exponentially intractable in naïve quantum models, requiring a more sophisticated modeling framework. To this end, we construct a nonlinear Gaussian approximation to the squeezing dynamics, defining a "Gaussian interaction frame" (GIF) in which non-Gaussian quantum dynamics can be isolated and concisely described using a few dominant (i.e., principal) supermodes. Numerical simulations of our model reveal non-Gaussian distortions of squeezing in the mesoscopic regime, largely associated with signal-pump entanglement. We argue that the state of the art in nonlinear nanophotonics is quickly approaching this regime, providing an all-optical platform for experimental studies of the semiclassical-to-quantum transition in a rich paradigm of coherent, multimode nonlinear dynamics. Mesoscopic pulsed squeezing thus provides an intriguing case study of the rapid rise in dynamic complexity associated with semiclassical-to-quantum crossover, which we view as a correlate of the emergence of new information-processing capacities in the quantum regime.
The first two authors contributed equally to this work; 16 pages, 7 figures
References in corpus (17)
- Quantum computational advantage using photons
- Universal Quantum Computation with Continuous-Variable Cluster States
- Monolithic Ultrahigh-Q Lithium Niobate Microring Resonator
- 1 Low power continuous-wave nonlinear optics in silica glass integrated waveguide structures
- Quantum circuits with many photons on a programmable nanophotonic chip
- Mach-Zehnder Interferometry at the Heisenberg Limit with coherent and squeezed-vacuum light
- Non-Gaussian Quantum States and Where to Find Them
- A bright, pulsed two-mode squeezer
- Time evolution algorithms for Matrix Product States and DMRG
- Quantum engineering of squeezed states for quantum communication and metrology
- Effects of time ordering in quantum nonlinear optics
- Decomposing a pulsed optical parametric amplifier into independent squeezers
- Pump depletion in parametric down-conversion with low pump energies
- Self-Consistent Projection Operator Theory in Nonlinear Quantum Optical Systems: A case study on Degenerate Optical Parametric Oscillators
- Spectral Effects of Strong Chi-2 Non-Linearity for Quantum Processing
- Efficient simulation of ultrafast quantum nonlinear optics with matrix product states
- Towards an Engineering Framework for Ultrafast Quantum Nonlinear Optics
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- Photon triplets from integrated microrings: A path towards deterministic non-Gaussianity on a chip
- CDJ-Pontryagin Optimal Control for General Continuously Monitored Quantum Systems