Transverse magnetic modes in hybrid nanoslot waveguides

Light enhancement and confinement in a nanometer-wide low-index material was proposed and demonstrated in a low index slot waveguide (LISW). To further reduce the mode width, a 5-layer metal/high index/low index/high index/metal hybrid nanoslot waveguide (HNSW) was constructed by replacing the outmo...

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Main Authors: Yongqing Fan, Shaoyong Peng, Youwen Liu
Format: Article
Language:English
Published: Elsevier 2020-03-01
Series:Results in Physics
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2211379720301121
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spelling doaj-4b40189ecb6f44f3a0fb40398a73e59b2020-11-25T03:18:47ZengElsevierResults in Physics2211-37972020-03-0116103017Transverse magnetic modes in hybrid nanoslot waveguidesYongqing Fan0Shaoyong Peng1Youwen Liu2Department of Applied Physics, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, ChinaDepartment of Applied Physics, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, ChinaCorresponding author.; Department of Applied Physics, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, ChinaLight enhancement and confinement in a nanometer-wide low-index material was proposed and demonstrated in a low index slot waveguide (LISW). To further reduce the mode width, a 5-layer metal/high index/low index/high index/metal hybrid nanoslot waveguide (HNSW) was constructed by replacing the outmost layer of LISW with a metal layer in which only TM modes exist. In this work, we analytically solve the guided-wave modes in the HNSW that are divided into six types according to the effective refractive index and the symmetry of the field distribution, and derive their dispersion equations and discuss the cut-off conditions. Two new guided-wave modes appear in HNSW that do not exist in the LISW structure. The abilities of light confinement of zero-order even modes between the HNSW structure and the LISW structure are compared, and the HNSW shows stronger light-confined ability and narrower mode than LISW, which makes it possible to simultaneously increase light-confined ability and reduce mode width in HNSW. For the specific Au/Si/SiO2/Si/Au HNSW, considering the metal loss will not change the basic properties of the zero-order modes at 1550 nm, except that the mode propagation length is reduced to a few microns.http://www.sciencedirect.com/science/article/pii/S2211379720301121Guided-wave modeTM magnetic modeHybrid nanoslot waveguideCut-off conditionLight-confined abilityMode propagation length
collection DOAJ
language English
format Article
sources DOAJ
author Yongqing Fan
Shaoyong Peng
Youwen Liu
spellingShingle Yongqing Fan
Shaoyong Peng
Youwen Liu
Transverse magnetic modes in hybrid nanoslot waveguides
Results in Physics
Guided-wave mode
TM magnetic mode
Hybrid nanoslot waveguide
Cut-off condition
Light-confined ability
Mode propagation length
author_facet Yongqing Fan
Shaoyong Peng
Youwen Liu
author_sort Yongqing Fan
title Transverse magnetic modes in hybrid nanoslot waveguides
title_short Transverse magnetic modes in hybrid nanoslot waveguides
title_full Transverse magnetic modes in hybrid nanoslot waveguides
title_fullStr Transverse magnetic modes in hybrid nanoslot waveguides
title_full_unstemmed Transverse magnetic modes in hybrid nanoslot waveguides
title_sort transverse magnetic modes in hybrid nanoslot waveguides
publisher Elsevier
series Results in Physics
issn 2211-3797
publishDate 2020-03-01
description Light enhancement and confinement in a nanometer-wide low-index material was proposed and demonstrated in a low index slot waveguide (LISW). To further reduce the mode width, a 5-layer metal/high index/low index/high index/metal hybrid nanoslot waveguide (HNSW) was constructed by replacing the outmost layer of LISW with a metal layer in which only TM modes exist. In this work, we analytically solve the guided-wave modes in the HNSW that are divided into six types according to the effective refractive index and the symmetry of the field distribution, and derive their dispersion equations and discuss the cut-off conditions. Two new guided-wave modes appear in HNSW that do not exist in the LISW structure. The abilities of light confinement of zero-order even modes between the HNSW structure and the LISW structure are compared, and the HNSW shows stronger light-confined ability and narrower mode than LISW, which makes it possible to simultaneously increase light-confined ability and reduce mode width in HNSW. For the specific Au/Si/SiO2/Si/Au HNSW, considering the metal loss will not change the basic properties of the zero-order modes at 1550 nm, except that the mode propagation length is reduced to a few microns.
topic Guided-wave mode
TM magnetic mode
Hybrid nanoslot waveguide
Cut-off condition
Light-confined ability
Mode propagation length
url http://www.sciencedirect.com/science/article/pii/S2211379720301121
work_keys_str_mv AT yongqingfan transversemagneticmodesinhybridnanoslotwaveguides
AT shaoyongpeng transversemagneticmodesinhybridnanoslotwaveguides
AT youwenliu transversemagneticmodesinhybridnanoslotwaveguides
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