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Pulsed Four-Wave Mixing at Telecom Wavelengths in Si(3)N(4) Waveguides Locally Covered by Graphene

Recently, the nonlinear optical response of graphene has been widely investigated, as has the integration of this 2D material onto dielectric waveguides so as to enhance the various nonlinear phenomena that underpin all-optical signal processing applications at telecom wavelengths. However, a great...

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Autores principales: Demongodin, Pierre, El Dirani, Houssein, Kerdilès, Sébastien, Lhuillier, Jérémy, Wood, Thomas, Sciancalepore, Corrado, Monat, Christelle
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9920485/
https://www.ncbi.nlm.nih.gov/pubmed/36770412
http://dx.doi.org/10.3390/nano13030451
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author Demongodin, Pierre
El Dirani, Houssein
Kerdilès, Sébastien
Lhuillier, Jérémy
Wood, Thomas
Sciancalepore, Corrado
Monat, Christelle
author_facet Demongodin, Pierre
El Dirani, Houssein
Kerdilès, Sébastien
Lhuillier, Jérémy
Wood, Thomas
Sciancalepore, Corrado
Monat, Christelle
author_sort Demongodin, Pierre
collection PubMed
description Recently, the nonlinear optical response of graphene has been widely investigated, as has the integration of this 2D material onto dielectric waveguides so as to enhance the various nonlinear phenomena that underpin all-optical signal processing applications at telecom wavelengths. However, a great disparity continues to exist from these experimental reports, depending on the used conditions or the hybrid devices under test. Most importantly, hybrid graphene-based waveguides were tested under relatively low powers, and/or combined with waveguide materials that already exhibited a nonnegligible nonlinear contribution, thereby limiting the practical use of graphene for nonlinear applications. Here, we experimentally investigate the nonlinear response of Si [Formula: see text] N [Formula: see text] waveguides that are locally covered by submillimeter-long graphene patches by means of pulsed degenerate four-wave mixing at telecom wavelength under 7 [Formula: see text] peak powers. Our measurements and comparison with simulations allow us to estimate a local change of the nonlinearity sign as well as a moderate increase of the nonlinear waveguide parameter (γ∼−10 m(−1)W(−1)) provided by graphene. Our analysis also clarifies the tradeoff associated with the loss penalty and nonlinear benefit afforded by graphene patches integrated onto passive photonic circuits, thereby providing some guidelines for the design of hybrid integrated nonlinear devices, coated with graphene, or, more generally, any other 2D material.
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spelling pubmed-99204852023-02-12 Pulsed Four-Wave Mixing at Telecom Wavelengths in Si(3)N(4) Waveguides Locally Covered by Graphene Demongodin, Pierre El Dirani, Houssein Kerdilès, Sébastien Lhuillier, Jérémy Wood, Thomas Sciancalepore, Corrado Monat, Christelle Nanomaterials (Basel) Article Recently, the nonlinear optical response of graphene has been widely investigated, as has the integration of this 2D material onto dielectric waveguides so as to enhance the various nonlinear phenomena that underpin all-optical signal processing applications at telecom wavelengths. However, a great disparity continues to exist from these experimental reports, depending on the used conditions or the hybrid devices under test. Most importantly, hybrid graphene-based waveguides were tested under relatively low powers, and/or combined with waveguide materials that already exhibited a nonnegligible nonlinear contribution, thereby limiting the practical use of graphene for nonlinear applications. Here, we experimentally investigate the nonlinear response of Si [Formula: see text] N [Formula: see text] waveguides that are locally covered by submillimeter-long graphene patches by means of pulsed degenerate four-wave mixing at telecom wavelength under 7 [Formula: see text] peak powers. Our measurements and comparison with simulations allow us to estimate a local change of the nonlinearity sign as well as a moderate increase of the nonlinear waveguide parameter (γ∼−10 m(−1)W(−1)) provided by graphene. Our analysis also clarifies the tradeoff associated with the loss penalty and nonlinear benefit afforded by graphene patches integrated onto passive photonic circuits, thereby providing some guidelines for the design of hybrid integrated nonlinear devices, coated with graphene, or, more generally, any other 2D material. MDPI 2023-01-22 /pmc/articles/PMC9920485/ /pubmed/36770412 http://dx.doi.org/10.3390/nano13030451 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Demongodin, Pierre
El Dirani, Houssein
Kerdilès, Sébastien
Lhuillier, Jérémy
Wood, Thomas
Sciancalepore, Corrado
Monat, Christelle
Pulsed Four-Wave Mixing at Telecom Wavelengths in Si(3)N(4) Waveguides Locally Covered by Graphene
title Pulsed Four-Wave Mixing at Telecom Wavelengths in Si(3)N(4) Waveguides Locally Covered by Graphene
title_full Pulsed Four-Wave Mixing at Telecom Wavelengths in Si(3)N(4) Waveguides Locally Covered by Graphene
title_fullStr Pulsed Four-Wave Mixing at Telecom Wavelengths in Si(3)N(4) Waveguides Locally Covered by Graphene
title_full_unstemmed Pulsed Four-Wave Mixing at Telecom Wavelengths in Si(3)N(4) Waveguides Locally Covered by Graphene
title_short Pulsed Four-Wave Mixing at Telecom Wavelengths in Si(3)N(4) Waveguides Locally Covered by Graphene
title_sort pulsed four-wave mixing at telecom wavelengths in si(3)n(4) waveguides locally covered by graphene
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9920485/
https://www.ncbi.nlm.nih.gov/pubmed/36770412
http://dx.doi.org/10.3390/nano13030451
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