Holographic Mapping of Orbital Angular Momentum Using a Terahertz Diffractive Optical Neural Network

Fuente: arXiv
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Main Authors: Jia, Wei, Gomez, Miguel, Blair, Steve, Sensale-Rodriguez, Berardi
Format: Preprint
Published: 2026
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author Jia, Wei
Gomez, Miguel
Blair, Steve
Sensale-Rodriguez, Berardi
author_facet Jia, Wei
Gomez, Miguel
Blair, Steve
Sensale-Rodriguez, Berardi
contents Using orbital angular momentum (OAM) in the terahertz (THz) range provides a new degree of freedom for communication and imaging systems. This study presents a compact diffractive optical neural network designed to recognize discrete and superposed OAM states at THz frequencies. The network consists of six diffractive layers trained to spatially separate nine OAM modes with topological charges from 1 to 9. Each mode is projected to a distinct position on the output plane, enabling direct recognition of its state. The structure was fabricated through low-cost 3D printing techniques with high-impact polystyrene (HIPS), allowing for scalable and practical implementations. Experimental validation at 0.3 THz demonstrates good fidelity of mode discrimination and mapping. The proposed approach offers a robust and economical pathway for OAM decoding, offering new opportunities for beam manipulation through THz systems based on diffractive optical neural networks.
format Preprint
id arxiv_https___arxiv_org_abs_2601_13336
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Holographic Mapping of Orbital Angular Momentum Using a Terahertz Diffractive Optical Neural Network
Jia, Wei
Gomez, Miguel
Blair, Steve
Sensale-Rodriguez, Berardi
Optics
Using orbital angular momentum (OAM) in the terahertz (THz) range provides a new degree of freedom for communication and imaging systems. This study presents a compact diffractive optical neural network designed to recognize discrete and superposed OAM states at THz frequencies. The network consists of six diffractive layers trained to spatially separate nine OAM modes with topological charges from 1 to 9. Each mode is projected to a distinct position on the output plane, enabling direct recognition of its state. The structure was fabricated through low-cost 3D printing techniques with high-impact polystyrene (HIPS), allowing for scalable and practical implementations. Experimental validation at 0.3 THz demonstrates good fidelity of mode discrimination and mapping. The proposed approach offers a robust and economical pathway for OAM decoding, offering new opportunities for beam manipulation through THz systems based on diffractive optical neural networks.
title Holographic Mapping of Orbital Angular Momentum Using a Terahertz Diffractive Optical Neural Network
topic Optics
url https://arxiv.org/abs/2601.13336