Article
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Preserved in Portico This version is not peer-reviewed
Deterministic Shaping of Quantum Light
Version 1
: Received: 19 February 2024 / Approved: 20 February 2024 / Online: 20 February 2024 (10:22:16 CET)
A peer-reviewed article of this Preprint also exists.
Compton, G.D.; Kuzyk, M.G. Deterministic Shaping of Quantum Light Statistics. Photonics 2024, 11, 287. Compton, G.D.; Kuzyk, M.G. Deterministic Shaping of Quantum Light Statistics. Photonics 2024, 11, 287.
Abstract
We propose a theoretical method for the deterministic shaping of quantum light via photon number state selective interactions. Nonclassical states of light are an essential resource for high precision optical techniques that rely on photon correlations and noise reshaping. Notable techniques include quantum enhanced interferometry, ghost imaging, and generating fault tolerant codes for continuous variable optical quantum computing. We show that a class of nonlinear-optical resonators can transform many-photon wavefunctions to produce structured states of light with nonclassical noise statistics. The devices, based on parametric down conversion, utilize the Kerr effect to tune photon number dependent frequency matching, inducing photon number selective interactions. With a high amplitude coherent pump, the number selective interaction shapes the noise of a two-mode squeezed cavity state with minimal dephasing, illustrated with simulations. We specify the requisite material properties to build the device and highlight the remaining material degrees of freedom which offer flexible material design.
Keywords
quantum optics; nonlinear optics; quantum state design; quantum control; quantum state engineering; ENZ; EIT; quantum metrology; cavity QED; CQED
Subject
Physical Sciences, Optics and Photonics
Copyright: This is an open access article distributed under the Creative Commons Attribution License which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
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