Nanofiber design for dispersion management

Recent researches have revealed that the multi-layer subwavelength-diameter fiber (SDF) provides promising solutions in dispersion management by controlling waveguide dispersion through proper tailoring of the fiber structure. These SDFs are potentially feasible for a great variety of applications i...

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Main Author: Cui, Shinan.
Other Authors: Shum Ping
Format: Final Year Project
Language:English
Published: 2011
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Online Access:http://hdl.handle.net/10356/45857
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-458572023-07-07T16:00:31Z Nanofiber design for dispersion management Cui, Shinan. Shum Ping School of Electrical and Electronic Engineering Chow Kin Kee DRNTU::Engineering::Electrical and electronic engineering::Optics, optoelectronics, photonics DRNTU::Engineering::Electrical and electronic engineering::Antennas, wave guides, microwaves, radar, radio Recent researches have revealed that the multi-layer subwavelength-diameter fiber (SDF) provides promising solutions in dispersion management by controlling waveguide dispersion through proper tailoring of the fiber structure. These SDFs are potentially feasible for a great variety of applications including optical communication, atom trapping, phased array radar, optical sensing and non-linear optics. However, the dependence of waveguide dispersion on the configuration of the SDF has not been adequately studied, which results in the lack of solid theoretical models for practical experiment and fabrication of SDF. Therefore, we construct analytical models for air-cladding and 3-layer SDF based on the exact solutions for propagation modes of light travelling in the respective guiding media. By utilizing the models built, detailed investigations on the dispersion properties of the SDF are also conducted. The air-cladding SDF model constructed in this project successfully reproduces the existing published results that the air-cladding SDF could achieve waveguide dispersion up to ns/(nm∙km) scale, compared to that of the conventional weakly guided fiber in ps/(nm∙km) scale. Moreover, the 3-layer SDF model developed in this project effectively demonstrates feasibility of managing dispersion by shifting the dispersion curves properly. A design of the 3-layer SDF, which has -3053 ps/(nm∙km) dispersion at 1550nm wavelength communication window, is proposed as an instance of accomplished dispersion management by optimized adjustment of the configuration of multi-layer SDF. Bachelor of Engineering 2011-06-22T07:45:19Z 2011-06-22T07:45:19Z 2011 2011 Final Year Project (FYP) http://hdl.handle.net/10356/45857 en Nanyang Technological University 60 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Electrical and electronic engineering::Optics, optoelectronics, photonics
DRNTU::Engineering::Electrical and electronic engineering::Antennas, wave guides, microwaves, radar, radio
spellingShingle DRNTU::Engineering::Electrical and electronic engineering::Optics, optoelectronics, photonics
DRNTU::Engineering::Electrical and electronic engineering::Antennas, wave guides, microwaves, radar, radio
Cui, Shinan.
Nanofiber design for dispersion management
description Recent researches have revealed that the multi-layer subwavelength-diameter fiber (SDF) provides promising solutions in dispersion management by controlling waveguide dispersion through proper tailoring of the fiber structure. These SDFs are potentially feasible for a great variety of applications including optical communication, atom trapping, phased array radar, optical sensing and non-linear optics. However, the dependence of waveguide dispersion on the configuration of the SDF has not been adequately studied, which results in the lack of solid theoretical models for practical experiment and fabrication of SDF. Therefore, we construct analytical models for air-cladding and 3-layer SDF based on the exact solutions for propagation modes of light travelling in the respective guiding media. By utilizing the models built, detailed investigations on the dispersion properties of the SDF are also conducted. The air-cladding SDF model constructed in this project successfully reproduces the existing published results that the air-cladding SDF could achieve waveguide dispersion up to ns/(nm∙km) scale, compared to that of the conventional weakly guided fiber in ps/(nm∙km) scale. Moreover, the 3-layer SDF model developed in this project effectively demonstrates feasibility of managing dispersion by shifting the dispersion curves properly. A design of the 3-layer SDF, which has -3053 ps/(nm∙km) dispersion at 1550nm wavelength communication window, is proposed as an instance of accomplished dispersion management by optimized adjustment of the configuration of multi-layer SDF.
author2 Shum Ping
author_facet Shum Ping
Cui, Shinan.
format Final Year Project
author Cui, Shinan.
author_sort Cui, Shinan.
title Nanofiber design for dispersion management
title_short Nanofiber design for dispersion management
title_full Nanofiber design for dispersion management
title_fullStr Nanofiber design for dispersion management
title_full_unstemmed Nanofiber design for dispersion management
title_sort nanofiber design for dispersion management
publishDate 2011
url http://hdl.handle.net/10356/45857
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