Tunable hyperbolic Landau-level polaritons in charge-neutral graphene nanoribbon metasurfaces

Fuente: arXiv
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Main Authors: Domina, Kateryna, Slipchenko, Tetiana, Nguyen, D. -H. -Minh, Kuzmenko, Alexey B., Martin-Moreno, Luis, Bercioux, Dario, Nikitin, Alexey Y.
Format: Preprint
Published: 2025
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author Domina, Kateryna
Slipchenko, Tetiana
Nguyen, D. -H. -Minh
Kuzmenko, Alexey B.
Martin-Moreno, Luis
Bercioux, Dario
Nikitin, Alexey Y.
author_facet Domina, Kateryna
Slipchenko, Tetiana
Nguyen, D. -H. -Minh
Kuzmenko, Alexey B.
Martin-Moreno, Luis
Bercioux, Dario
Nikitin, Alexey Y.
contents Magnetized charge-neutral graphene supports collective hybrid electronic excitations - polaritons - which have quantum origin. In contrast to polaritons in doped graphene, which arise from intraband electronic transitions, those in charge-neutral graphene originate from interband transitions between Landau levels, enabled by the applied magnetic field. Control of such quantum polaritons and shaping their wavefronts remains totally unexplored. Here we design an artificial two-dimensional quantum material formed by charge-neutral graphene nanoribbons exposed to an external magnetic field. In such metasurface, quantum polaritons acquire a hyperbolic dispersion. We find that the topology of the isofrequency curves of quantum hyperbolic magnetoexciton polaritons excited in this quantum material can change, so that the shape of isofrequency curves transforms from a closed to open one by tuning the external magnetic field strength. At the topological transition, we observe canalization phenomena, consisting of the propagation of all the polaritonic plane waves in the continuum along the same direction when excited by a point source. From a general perspective, our fundamental findings introduce a novel type of actively-tunable quantum polaritons with hyperbolic dispersion and can be further generalized to other types of quantum materials and polaritons in them. In practice, quantum hyperbolic polaritons can be used for applications related to quantum sensing and computing.
format Preprint
id arxiv_https___arxiv_org_abs_2506_23786
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Tunable hyperbolic Landau-level polaritons in charge-neutral graphene nanoribbon metasurfaces
Domina, Kateryna
Slipchenko, Tetiana
Nguyen, D. -H. -Minh
Kuzmenko, Alexey B.
Martin-Moreno, Luis
Bercioux, Dario
Nikitin, Alexey Y.
Mesoscale and Nanoscale Physics
Materials Science
Magnetized charge-neutral graphene supports collective hybrid electronic excitations - polaritons - which have quantum origin. In contrast to polaritons in doped graphene, which arise from intraband electronic transitions, those in charge-neutral graphene originate from interband transitions between Landau levels, enabled by the applied magnetic field. Control of such quantum polaritons and shaping their wavefronts remains totally unexplored. Here we design an artificial two-dimensional quantum material formed by charge-neutral graphene nanoribbons exposed to an external magnetic field. In such metasurface, quantum polaritons acquire a hyperbolic dispersion. We find that the topology of the isofrequency curves of quantum hyperbolic magnetoexciton polaritons excited in this quantum material can change, so that the shape of isofrequency curves transforms from a closed to open one by tuning the external magnetic field strength. At the topological transition, we observe canalization phenomena, consisting of the propagation of all the polaritonic plane waves in the continuum along the same direction when excited by a point source. From a general perspective, our fundamental findings introduce a novel type of actively-tunable quantum polaritons with hyperbolic dispersion and can be further generalized to other types of quantum materials and polaritons in them. In practice, quantum hyperbolic polaritons can be used for applications related to quantum sensing and computing.
title Tunable hyperbolic Landau-level polaritons in charge-neutral graphene nanoribbon metasurfaces
topic Mesoscale and Nanoscale Physics
Materials Science
url https://arxiv.org/abs/2506.23786