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Unfolding the band structure of non-crystalline photonic band gap materials

Non-crystalline photonic band gap (PBG) materials have received increasing attention, and sizeable PBGs have been reported in quasi-crystalline structures and, more recently, in disordered structures. Band structure calculations for periodic structures produce accurate dispersion relations, which de...

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Autores principales: Tsitrin, Samuel, Williamson, Eric Paul, Amoah, Timothy, Nahal, Geev, Chan, Ho Leung, Florescu, Marian, Man, Weining
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4542607/
https://www.ncbi.nlm.nih.gov/pubmed/26289434
http://dx.doi.org/10.1038/srep13301
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author Tsitrin, Samuel
Williamson, Eric Paul
Amoah, Timothy
Nahal, Geev
Chan, Ho Leung
Florescu, Marian
Man, Weining
author_facet Tsitrin, Samuel
Williamson, Eric Paul
Amoah, Timothy
Nahal, Geev
Chan, Ho Leung
Florescu, Marian
Man, Weining
author_sort Tsitrin, Samuel
collection PubMed
description Non-crystalline photonic band gap (PBG) materials have received increasing attention, and sizeable PBGs have been reported in quasi-crystalline structures and, more recently, in disordered structures. Band structure calculations for periodic structures produce accurate dispersion relations, which determine group velocities, dispersion, density of states and iso-frequency surfaces, and are used to predict a wide-range of optical phenomena including light propagation, excited-state decay rates, temporal broadening or compression of ultrashort pulses and complex refraction phenomena. However, band calculations for non-periodic structures employ large super-cells of hundreds to thousands building blocks, and provide little useful information other than the PBG central frequency and width. Using stereolithography, we construct cm-scale disordered PBG materials and perform microwave transmission measurements, as well as finite-difference time-domain (FDTD) simulations. The photonic dispersion relations are reconstructed from the measured and simulated phase data. Our results demonstrate the existence of sizeable PBGs in these disordered structures and provide detailed information of the effective band diagrams, dispersion relation, iso-frequency contours, and their angular dependence. Slow light phenomena are also observed in these structures near gap frequencies. This study introduces a powerful tool to investigate photonic properties of non-crystalline structures and provides important effective dispersion information, otherwise difficult to obtain.
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spelling pubmed-45426072015-09-01 Unfolding the band structure of non-crystalline photonic band gap materials Tsitrin, Samuel Williamson, Eric Paul Amoah, Timothy Nahal, Geev Chan, Ho Leung Florescu, Marian Man, Weining Sci Rep Article Non-crystalline photonic band gap (PBG) materials have received increasing attention, and sizeable PBGs have been reported in quasi-crystalline structures and, more recently, in disordered structures. Band structure calculations for periodic structures produce accurate dispersion relations, which determine group velocities, dispersion, density of states and iso-frequency surfaces, and are used to predict a wide-range of optical phenomena including light propagation, excited-state decay rates, temporal broadening or compression of ultrashort pulses and complex refraction phenomena. However, band calculations for non-periodic structures employ large super-cells of hundreds to thousands building blocks, and provide little useful information other than the PBG central frequency and width. Using stereolithography, we construct cm-scale disordered PBG materials and perform microwave transmission measurements, as well as finite-difference time-domain (FDTD) simulations. The photonic dispersion relations are reconstructed from the measured and simulated phase data. Our results demonstrate the existence of sizeable PBGs in these disordered structures and provide detailed information of the effective band diagrams, dispersion relation, iso-frequency contours, and their angular dependence. Slow light phenomena are also observed in these structures near gap frequencies. This study introduces a powerful tool to investigate photonic properties of non-crystalline structures and provides important effective dispersion information, otherwise difficult to obtain. Nature Publishing Group 2015-08-20 /pmc/articles/PMC4542607/ /pubmed/26289434 http://dx.doi.org/10.1038/srep13301 Text en Copyright © 2015, Macmillan Publishers Limited http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Tsitrin, Samuel
Williamson, Eric Paul
Amoah, Timothy
Nahal, Geev
Chan, Ho Leung
Florescu, Marian
Man, Weining
Unfolding the band structure of non-crystalline photonic band gap materials
title Unfolding the band structure of non-crystalline photonic band gap materials
title_full Unfolding the band structure of non-crystalline photonic band gap materials
title_fullStr Unfolding the band structure of non-crystalline photonic band gap materials
title_full_unstemmed Unfolding the band structure of non-crystalline photonic band gap materials
title_short Unfolding the band structure of non-crystalline photonic band gap materials
title_sort unfolding the band structure of non-crystalline photonic band gap materials
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4542607/
https://www.ncbi.nlm.nih.gov/pubmed/26289434
http://dx.doi.org/10.1038/srep13301
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