Investigation of supercontinuum generation in specialty fibers

Supercontinuum generation has sparked much interest in the field of nonlinear optics for over several decades, due to a broad range of applications in the medical, industrial and research fields. Particularly, supercontinuum generation with good flatness and broad spectral bandwidth in the mid-infra...

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Main Author: Norshila Ismail
Other Authors: Chow Kin Kee
Format: Final Year Project
Language:English
Published: 2015
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Online Access:http://hdl.handle.net/10356/64865
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-648652023-07-07T16:00:05Z Investigation of supercontinuum generation in specialty fibers Norshila Ismail Chow Kin Kee School of Electrical and Electronic Engineering DRNTU::Engineering::Electrical and electronic engineering Supercontinuum generation has sparked much interest in the field of nonlinear optics for over several decades, due to a broad range of applications in the medical, industrial and research fields. Particularly, supercontinuum generation with good flatness and broad spectral bandwidth in the mid-infrared region has potential applications in spectroscopy, materials processing, chemical and bio-molecular sensing, security and industry. Supercontinuum generation is achievable through the use of ultra short pulses in the femtosecond or picosecond regime and with the use of highly nonlinear fibers. A highly nonlinear fiber is one kind of specialty fiber that is not only designed for guiding light beams but also for new frequency generation. Such highly nonlinear fibers can be achieved by physical modification of its fiber structure such as a change of core and cladding geometry as well as doping additional material in fiber with high nonlinearity. When an optical pulse with high intensity passes through a highly nonlinear fiber, the dispersive effect and the optical Kerr effect take place and that can lead to the formation of a flat and broadband optical spectrum. In this report, the numerical simulation is mainly conducted for producing supercontinuum spectrum with good flatness and broad spectral bandwidth. Through the use of the model based on Nonlinear Schrodinger’s Equation (NLSE), which governs the occurrence of these nonlinear and dispersive processes, an understanding of the processes can be achieved. The NLSE is solved through the use of split-step Fourier method. In the simulation, various parameters of the fiber such as group velocity dispersion, nonlinear coefficient, fiber length as well as the parameters of input pulse such as peak power and pulse width can be changed and optimized in order to get substantial spectral broadening and good flatness. Bachelor of Engineering 2015-06-09T02:03:49Z 2015-06-09T02:03:49Z 2015 2015 Final Year Project (FYP) http://hdl.handle.net/10356/64865 en Nanyang Technological University 66 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
spellingShingle DRNTU::Engineering::Electrical and electronic engineering
Norshila Ismail
Investigation of supercontinuum generation in specialty fibers
description Supercontinuum generation has sparked much interest in the field of nonlinear optics for over several decades, due to a broad range of applications in the medical, industrial and research fields. Particularly, supercontinuum generation with good flatness and broad spectral bandwidth in the mid-infrared region has potential applications in spectroscopy, materials processing, chemical and bio-molecular sensing, security and industry. Supercontinuum generation is achievable through the use of ultra short pulses in the femtosecond or picosecond regime and with the use of highly nonlinear fibers. A highly nonlinear fiber is one kind of specialty fiber that is not only designed for guiding light beams but also for new frequency generation. Such highly nonlinear fibers can be achieved by physical modification of its fiber structure such as a change of core and cladding geometry as well as doping additional material in fiber with high nonlinearity. When an optical pulse with high intensity passes through a highly nonlinear fiber, the dispersive effect and the optical Kerr effect take place and that can lead to the formation of a flat and broadband optical spectrum. In this report, the numerical simulation is mainly conducted for producing supercontinuum spectrum with good flatness and broad spectral bandwidth. Through the use of the model based on Nonlinear Schrodinger’s Equation (NLSE), which governs the occurrence of these nonlinear and dispersive processes, an understanding of the processes can be achieved. The NLSE is solved through the use of split-step Fourier method. In the simulation, various parameters of the fiber such as group velocity dispersion, nonlinear coefficient, fiber length as well as the parameters of input pulse such as peak power and pulse width can be changed and optimized in order to get substantial spectral broadening and good flatness.
author2 Chow Kin Kee
author_facet Chow Kin Kee
Norshila Ismail
format Final Year Project
author Norshila Ismail
author_sort Norshila Ismail
title Investigation of supercontinuum generation in specialty fibers
title_short Investigation of supercontinuum generation in specialty fibers
title_full Investigation of supercontinuum generation in specialty fibers
title_fullStr Investigation of supercontinuum generation in specialty fibers
title_full_unstemmed Investigation of supercontinuum generation in specialty fibers
title_sort investigation of supercontinuum generation in specialty fibers
publishDate 2015
url http://hdl.handle.net/10356/64865
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