Ray geodesics and wave propagation on the Beltrami surface: Optics of an optical wormhole

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Auteurs principaux: Dogan, Semra Gurtas, Guvendi, Abdullah, Mustafa, Omar
Format: Preprint
Publié: 2025
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author Dogan, Semra Gurtas
Guvendi, Abdullah
Mustafa, Omar
author_facet Dogan, Semra Gurtas
Guvendi, Abdullah
Mustafa, Omar
contents This study investigates ray geodesics and wave propagation on the Beltrami surface, with a particular emphasis on the effective potentials governing photon dynamics. We derive the geodesic equations and analyze the Helmholtz equation within this curved geometry, revealing that the resulting potentials are purely repulsive. For ray trajectories, the potential is determined by wormhole parameters such as the throat radius ($\ell$), radial optical distance ($u$), scale parameter ($R$), and the angular momentum of the test field. Near the wormhole throat, the potential remains constant, preventing inward motion below a critical energy threshold, whereas at larger radial distances, it decays exponentially, allowing free propagation. In the context of wave propagation, the potential exhibits a centrifugal barrier along with a constant repulsive term at large $u$. The Beltrami surface, characterized by constant negative Gaussian curvature, serves as a model for graphene sheets and optical wormholes in condensed matter systems. These results allow us to determine the space- and frequency-dependent refractive index of the medium, providing a coherent framework for understanding photon behavior in such systems, with promising implications for material applications.
format Preprint
id arxiv_https___arxiv_org_abs_2504_10518
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Ray geodesics and wave propagation on the Beltrami surface: Optics of an optical wormhole
Dogan, Semra Gurtas
Guvendi, Abdullah
Mustafa, Omar
Classical Physics
General Relativity and Quantum Cosmology
High Energy Physics - Theory
This study investigates ray geodesics and wave propagation on the Beltrami surface, with a particular emphasis on the effective potentials governing photon dynamics. We derive the geodesic equations and analyze the Helmholtz equation within this curved geometry, revealing that the resulting potentials are purely repulsive. For ray trajectories, the potential is determined by wormhole parameters such as the throat radius ($\ell$), radial optical distance ($u$), scale parameter ($R$), and the angular momentum of the test field. Near the wormhole throat, the potential remains constant, preventing inward motion below a critical energy threshold, whereas at larger radial distances, it decays exponentially, allowing free propagation. In the context of wave propagation, the potential exhibits a centrifugal barrier along with a constant repulsive term at large $u$. The Beltrami surface, characterized by constant negative Gaussian curvature, serves as a model for graphene sheets and optical wormholes in condensed matter systems. These results allow us to determine the space- and frequency-dependent refractive index of the medium, providing a coherent framework for understanding photon behavior in such systems, with promising implications for material applications.
title Ray geodesics and wave propagation on the Beltrami surface: Optics of an optical wormhole
topic Classical Physics
General Relativity and Quantum Cosmology
High Energy Physics - Theory
url https://arxiv.org/abs/2504.10518