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Diffraction-less propagation beyond the sub-wavelength regime: a new type of nanophotonic waveguide

Sub-wavelength grating (SWG) metamaterials have garnered a great interest for their singular capability to shape the propagation of light. However, practical SWG implementations are limited by fabrication constraints, such as minimum feature size. Here, we present a new nanophotonic waveguide gratin...

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Autores principales: Alonso-Ramos, Carlos, Le Roux, Xavier, Zhang, Jianhao, Benedikovic, Daniel, Vakarin, Vladyslav, Durán-Valdeiglesias, Elena, Oser, Dorian, Pérez-Galacho, Diego, Mazeas, Florent, Labonté, Laurent, Tanzilli, Sébastien, Cassan, Éric, Marris-Morini, Delphine, Cheben, Pavel, Vivien, Laurent
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6441096/
https://www.ncbi.nlm.nih.gov/pubmed/30926853
http://dx.doi.org/10.1038/s41598-019-41810-0
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author Alonso-Ramos, Carlos
Le Roux, Xavier
Zhang, Jianhao
Benedikovic, Daniel
Vakarin, Vladyslav
Durán-Valdeiglesias, Elena
Oser, Dorian
Pérez-Galacho, Diego
Mazeas, Florent
Labonté, Laurent
Tanzilli, Sébastien
Cassan, Éric
Marris-Morini, Delphine
Cheben, Pavel
Vivien, Laurent
author_facet Alonso-Ramos, Carlos
Le Roux, Xavier
Zhang, Jianhao
Benedikovic, Daniel
Vakarin, Vladyslav
Durán-Valdeiglesias, Elena
Oser, Dorian
Pérez-Galacho, Diego
Mazeas, Florent
Labonté, Laurent
Tanzilli, Sébastien
Cassan, Éric
Marris-Morini, Delphine
Cheben, Pavel
Vivien, Laurent
author_sort Alonso-Ramos, Carlos
collection PubMed
description Sub-wavelength grating (SWG) metamaterials have garnered a great interest for their singular capability to shape the propagation of light. However, practical SWG implementations are limited by fabrication constraints, such as minimum feature size. Here, we present a new nanophotonic waveguide grating concept that exploits phase-matching engineering to suppress diffraction effects for a period three times larger than those with SWG approaches. This long-period grating not only facilitates fabrication, but also enables a new diffraction-less regime with additional degrees of freedom to control light propagation. More specifically, the proposed phase-matching engineering enables selective diffraction suppression, providing new tools to shape propagation in the grating. We harness this flexible diffraction control to yield single-mode propagation in, otherwise, highly multimode waveguides, and to implement Bragg filters that combine highly-diffractive and diffraction-less regions to dramatically increase light rejection. Capitalizing on this new concept, we experimentally demonstrate a Si membrane Bragg filter with record rejection value exceeding 60 dB. These results demonstrate the potential of the proposed long-period grating for the engineering of diffraction in nanophotonic waveguides and pave the way for the development of a new generation of high-performance Si photonics devices.
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spelling pubmed-64410962019-04-04 Diffraction-less propagation beyond the sub-wavelength regime: a new type of nanophotonic waveguide Alonso-Ramos, Carlos Le Roux, Xavier Zhang, Jianhao Benedikovic, Daniel Vakarin, Vladyslav Durán-Valdeiglesias, Elena Oser, Dorian Pérez-Galacho, Diego Mazeas, Florent Labonté, Laurent Tanzilli, Sébastien Cassan, Éric Marris-Morini, Delphine Cheben, Pavel Vivien, Laurent Sci Rep Article Sub-wavelength grating (SWG) metamaterials have garnered a great interest for their singular capability to shape the propagation of light. However, practical SWG implementations are limited by fabrication constraints, such as minimum feature size. Here, we present a new nanophotonic waveguide grating concept that exploits phase-matching engineering to suppress diffraction effects for a period three times larger than those with SWG approaches. This long-period grating not only facilitates fabrication, but also enables a new diffraction-less regime with additional degrees of freedom to control light propagation. More specifically, the proposed phase-matching engineering enables selective diffraction suppression, providing new tools to shape propagation in the grating. We harness this flexible diffraction control to yield single-mode propagation in, otherwise, highly multimode waveguides, and to implement Bragg filters that combine highly-diffractive and diffraction-less regions to dramatically increase light rejection. Capitalizing on this new concept, we experimentally demonstrate a Si membrane Bragg filter with record rejection value exceeding 60 dB. These results demonstrate the potential of the proposed long-period grating for the engineering of diffraction in nanophotonic waveguides and pave the way for the development of a new generation of high-performance Si photonics devices. Nature Publishing Group UK 2019-03-29 /pmc/articles/PMC6441096/ /pubmed/30926853 http://dx.doi.org/10.1038/s41598-019-41810-0 Text en © The Author(s) 2019 Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/.
spellingShingle Article
Alonso-Ramos, Carlos
Le Roux, Xavier
Zhang, Jianhao
Benedikovic, Daniel
Vakarin, Vladyslav
Durán-Valdeiglesias, Elena
Oser, Dorian
Pérez-Galacho, Diego
Mazeas, Florent
Labonté, Laurent
Tanzilli, Sébastien
Cassan, Éric
Marris-Morini, Delphine
Cheben, Pavel
Vivien, Laurent
Diffraction-less propagation beyond the sub-wavelength regime: a new type of nanophotonic waveguide
title Diffraction-less propagation beyond the sub-wavelength regime: a new type of nanophotonic waveguide
title_full Diffraction-less propagation beyond the sub-wavelength regime: a new type of nanophotonic waveguide
title_fullStr Diffraction-less propagation beyond the sub-wavelength regime: a new type of nanophotonic waveguide
title_full_unstemmed Diffraction-less propagation beyond the sub-wavelength regime: a new type of nanophotonic waveguide
title_short Diffraction-less propagation beyond the sub-wavelength regime: a new type of nanophotonic waveguide
title_sort diffraction-less propagation beyond the sub-wavelength regime: a new type of nanophotonic waveguide
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6441096/
https://www.ncbi.nlm.nih.gov/pubmed/30926853
http://dx.doi.org/10.1038/s41598-019-41810-0
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