Omnidirectional Phase Matching In Zero-Index Media

Since its inception, the field of nonlinear optics has only increased in importance as a result of a growing number of applications. The efficiency of all parametric nonlinear optical processes is limited by challenges associated with phase-matching requirements. To address this constraint, a variet...

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Bibliographic Details
Main Author: Gagnon, Justin
Other Authors: Boyd, Robert
Format: Others
Language:en
Published: Université d'Ottawa / University of Ottawa 2021
Subjects:
ENZ
MNZ
PBG
Online Access:http://hdl.handle.net/10393/42029
http://dx.doi.org/10.20381/ruor-26251
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spelling ndltd-uottawa.ca-oai-ruor.uottawa.ca-10393-420292021-04-23T17:24:27Z Omnidirectional Phase Matching In Zero-Index Media Gagnon, Justin Boyd, Robert Zero-index Phase matching Nonlinear Optics Four-wave mixing Nanophotonics Dirac-cone Metamaterials Photonic crystal Omnidirectional Nanofabrication Photonics ENZ ENZ material MNZ MNZ material EMNZ EMNZ material Nonlinear interaction Coherence Length Physics Optics PBG Dispersion Since its inception, the field of nonlinear optics has only increased in importance as a result of a growing number of applications. The efficiency of all parametric nonlinear optical processes is limited by challenges associated with phase-matching requirements. To address this constraint, a variety of approaches, such as quasi-phase-matching, birefringent phase matching, and higher-order-mode phase matching have historically been used to phase-match interactions. However, the methods demonstrated to date suffer from the inconvenience of only being phase-matched for one specific arrangement of beams, typically co-propagating along the same axis. This stringency of the phase-matching requirement results in cumbersome optical configurations and large footprints for integrated devices. In this thesis, we show that phase-matching requirements in parametric nonlinear optical processes may be satisfied for all orientations of input and output beams when using zero-index media: a condition of omnidirectional phase matching. To validate this theory, we perform experimental demonstrations of phase matching for five separate FWM beam configurations to confirm this phenomenon. Our measurements constitute the first experimental observation of the simultaneous generation of a forward- and backward-propagating signal with respect to the pump beams in a medium longer than a free-space optical wavelength, allowing us to determine the coherence length of our four-wave-mixing process. Our demonstration includes nonlinear signal generation from spectrally distinct counter-propagating pump and probe beams, as well as the excitation of a parametric process with the probe beam's wave vector orthogonal to the wave vector of the pump beam. By sampling all of these beam configurations, our results explicitly demonstrate that the unique properties of zero-index media relax traditional phase-matching constraints, and provide strong experimental evidence for the existence of omnidirectional phase matching in zero-index media. This property can be exploited to facilitate nonlinear interactions and miniaturize nonlinear devices, and adds to the established exceptional properties of low-index materials. 2021-04-22T17:39:41Z 2021-04-22T17:39:41Z 2021-04-22 Thesis http://hdl.handle.net/10393/42029 http://dx.doi.org/10.20381/ruor-26251 en application/pdf Université d'Ottawa / University of Ottawa
collection NDLTD
language en
format Others
sources NDLTD
topic Zero-index
Phase matching
Nonlinear Optics
Four-wave mixing
Nanophotonics
Dirac-cone
Metamaterials
Photonic crystal
Omnidirectional
Nanofabrication
Photonics
ENZ
ENZ material
MNZ
MNZ material
EMNZ
EMNZ material
Nonlinear interaction
Coherence Length
Physics
Optics
PBG
Dispersion
spellingShingle Zero-index
Phase matching
Nonlinear Optics
Four-wave mixing
Nanophotonics
Dirac-cone
Metamaterials
Photonic crystal
Omnidirectional
Nanofabrication
Photonics
ENZ
ENZ material
MNZ
MNZ material
EMNZ
EMNZ material
Nonlinear interaction
Coherence Length
Physics
Optics
PBG
Dispersion
Gagnon, Justin
Omnidirectional Phase Matching In Zero-Index Media
description Since its inception, the field of nonlinear optics has only increased in importance as a result of a growing number of applications. The efficiency of all parametric nonlinear optical processes is limited by challenges associated with phase-matching requirements. To address this constraint, a variety of approaches, such as quasi-phase-matching, birefringent phase matching, and higher-order-mode phase matching have historically been used to phase-match interactions. However, the methods demonstrated to date suffer from the inconvenience of only being phase-matched for one specific arrangement of beams, typically co-propagating along the same axis. This stringency of the phase-matching requirement results in cumbersome optical configurations and large footprints for integrated devices. In this thesis, we show that phase-matching requirements in parametric nonlinear optical processes may be satisfied for all orientations of input and output beams when using zero-index media: a condition of omnidirectional phase matching. To validate this theory, we perform experimental demonstrations of phase matching for five separate FWM beam configurations to confirm this phenomenon. Our measurements constitute the first experimental observation of the simultaneous generation of a forward- and backward-propagating signal with respect to the pump beams in a medium longer than a free-space optical wavelength, allowing us to determine the coherence length of our four-wave-mixing process. Our demonstration includes nonlinear signal generation from spectrally distinct counter-propagating pump and probe beams, as well as the excitation of a parametric process with the probe beam's wave vector orthogonal to the wave vector of the pump beam. By sampling all of these beam configurations, our results explicitly demonstrate that the unique properties of zero-index media relax traditional phase-matching constraints, and provide strong experimental evidence for the existence of omnidirectional phase matching in zero-index media. This property can be exploited to facilitate nonlinear interactions and miniaturize nonlinear devices, and adds to the established exceptional properties of low-index materials.
author2 Boyd, Robert
author_facet Boyd, Robert
Gagnon, Justin
author Gagnon, Justin
author_sort Gagnon, Justin
title Omnidirectional Phase Matching In Zero-Index Media
title_short Omnidirectional Phase Matching In Zero-Index Media
title_full Omnidirectional Phase Matching In Zero-Index Media
title_fullStr Omnidirectional Phase Matching In Zero-Index Media
title_full_unstemmed Omnidirectional Phase Matching In Zero-Index Media
title_sort omnidirectional phase matching in zero-index media
publisher Université d'Ottawa / University of Ottawa
publishDate 2021
url http://hdl.handle.net/10393/42029
http://dx.doi.org/10.20381/ruor-26251
work_keys_str_mv AT gagnonjustin omnidirectionalphasematchinginzeroindexmedia
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