Multi-modes Bessel-Gaussian-Orbital Angular Momentum Beams Quantum Holography

Fuente: arXiv
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Main Authors: Li, Jinjin, Zhao, Chaoying
Format: Preprint
Published: 2026
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author Li, Jinjin
Zhao, Chaoying
author_facet Li, Jinjin
Zhao, Chaoying
contents We propose an orbital angular momentum (OAM) quantum holography scheme based on multi-mode Bessel-Gaussian (MBG) beams. Entangled photon pairs are generated through spontaneous parametric down-conversion (SPDC) process, and the axis prism parameters and topological charges of the idler photons are used for encoding to construct Bessel-Gaussian quantum selective holograms; then, the corresponding mode parameters carried by the signal photons are used for correlated decoding and information reconstruction. Theoretical analysis and numerical simulation results show that this scheme can effectively realize OAM quantum holography based on Bessel-Gaussian modes encoding. Compared with traditional single OAM encoding methods, our scheme introduce an additional mode degrees of freedom, which can enhance multiplexing dimension and encoding capacity; at the same time, relying on the non-classical correlation characteristics of entangled photons, quantum holography has a potential advantages in noise-resistance performance.
format Preprint
id arxiv_https___arxiv_org_abs_2604_24774
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Multi-modes Bessel-Gaussian-Orbital Angular Momentum Beams Quantum Holography
Li, Jinjin
Zhao, Chaoying
Optics
Quantum Physics
We propose an orbital angular momentum (OAM) quantum holography scheme based on multi-mode Bessel-Gaussian (MBG) beams. Entangled photon pairs are generated through spontaneous parametric down-conversion (SPDC) process, and the axis prism parameters and topological charges of the idler photons are used for encoding to construct Bessel-Gaussian quantum selective holograms; then, the corresponding mode parameters carried by the signal photons are used for correlated decoding and information reconstruction. Theoretical analysis and numerical simulation results show that this scheme can effectively realize OAM quantum holography based on Bessel-Gaussian modes encoding. Compared with traditional single OAM encoding methods, our scheme introduce an additional mode degrees of freedom, which can enhance multiplexing dimension and encoding capacity; at the same time, relying on the non-classical correlation characteristics of entangled photons, quantum holography has a potential advantages in noise-resistance performance.
title Multi-modes Bessel-Gaussian-Orbital Angular Momentum Beams Quantum Holography
topic Optics
Quantum Physics
url https://arxiv.org/abs/2604.24774