Modeling of normalized frequency gradient for fused single mode fiber of coupling ratio

Although the coupling ratio research has shown good progress in experimental and theoretical calculation, coupled waveguide fibers still have power reflection and power losses due to the effects of fabrication. Two fibers are coupled and heated by injecting hydrogen flow at a pressure of 1 bar with...

Full description

Bibliographic Details
Main Authors: Toto, Saktioto, Ali, Jalil, Zainal, Jasman, Fadhali, Mohamed
Format: Article
Language:English
Published: 2007
Subjects:
Online Access:http://eprints.utm.my/5875/1/MODELING_OF_NORMALIZED_FREQUENCY_GRADIENT_FOR_FUSED_SINGLE_MODE_FIBER_OF_COUPLING_RATIO.pdf
_version_ 1796853981343907840
author Toto, Saktioto
Ali, Jalil
Zainal, Jasman
Fadhali, Mohamed
author_facet Toto, Saktioto
Ali, Jalil
Zainal, Jasman
Fadhali, Mohamed
author_sort Toto, Saktioto
collection ePrints
description Although the coupling ratio research has shown good progress in experimental and theoretical calculation, coupled waveguide fibers still have power reflection and power losses due to the effects of fabrication. Two fibers are coupled and heated by injecting hydrogen flow at a pressure of 1 bar with the torch flame in the range of 800-1350C. During the fusion process some optical parameters are found to vary over a wide range. A coupling coefficient is estimated from experimental results of coupling ratio distribution ranging from 1% to 75%, and a refractive index is calculated from the empirical calculation. It is found that the change of the fiber geometry affects normalized frequency even for single mode fiber. Coupling ratio as the function of coupling coefficient and separation of fiber axis changes the normalized frequency at the coupling region. Normalized frequency is derived from the radius, wavelength and refractive index parameters. At the left and right side of the coupling region, some parameters are decreased and increased respectively. At the center of the coupling region, some optical parameters are assumed to remain constant. The normalized frequency is integrated over the pulling length in the range of 2500-9500um for 1-D where radial and angle directions are ignored. Simulation result shows that the normalized frequency is significantly affected by the radius compared to the wavelength and refractive index of the core and cladding. This simulation has a dependence of power phenomena in transmission and reflection for communication and industrial application of coupled fibers. Keywords: Single mode fiber, coupling ratio, coupling coefficient, normalized frequency.
first_indexed 2024-03-05T18:07:38Z
format Article
id utm.eprints-5875
institution Universiti Teknologi Malaysia - ePrints
language English
last_indexed 2024-03-05T18:07:38Z
publishDate 2007
record_format dspace
spelling utm.eprints-58752010-12-16T03:36:26Z http://eprints.utm.my/5875/ Modeling of normalized frequency gradient for fused single mode fiber of coupling ratio Toto, Saktioto Ali, Jalil Zainal, Jasman Fadhali, Mohamed Q Science (General) T Technology (General) Although the coupling ratio research has shown good progress in experimental and theoretical calculation, coupled waveguide fibers still have power reflection and power losses due to the effects of fabrication. Two fibers are coupled and heated by injecting hydrogen flow at a pressure of 1 bar with the torch flame in the range of 800-1350C. During the fusion process some optical parameters are found to vary over a wide range. A coupling coefficient is estimated from experimental results of coupling ratio distribution ranging from 1% to 75%, and a refractive index is calculated from the empirical calculation. It is found that the change of the fiber geometry affects normalized frequency even for single mode fiber. Coupling ratio as the function of coupling coefficient and separation of fiber axis changes the normalized frequency at the coupling region. Normalized frequency is derived from the radius, wavelength and refractive index parameters. At the left and right side of the coupling region, some parameters are decreased and increased respectively. At the center of the coupling region, some optical parameters are assumed to remain constant. The normalized frequency is integrated over the pulling length in the range of 2500-9500um for 1-D where radial and angle directions are ignored. Simulation result shows that the normalized frequency is significantly affected by the radius compared to the wavelength and refractive index of the core and cladding. This simulation has a dependence of power phenomena in transmission and reflection for communication and industrial application of coupled fibers. Keywords: Single mode fiber, coupling ratio, coupling coefficient, normalized frequency. 2007-11 Article PeerReviewed application/pdf en http://eprints.utm.my/5875/1/MODELING_OF_NORMALIZED_FREQUENCY_GRADIENT_FOR_FUSED_SINGLE_MODE_FIBER_OF_COUPLING_RATIO.pdf Toto, Saktioto and Ali, Jalil and Zainal, Jasman and Fadhali, Mohamed (2007) Modeling of normalized frequency gradient for fused single mode fiber of coupling ratio. SPIE/COS photonics asia . p. 1. (Unpublished)
spellingShingle Q Science (General)
T Technology (General)
Toto, Saktioto
Ali, Jalil
Zainal, Jasman
Fadhali, Mohamed
Modeling of normalized frequency gradient for fused single mode fiber of coupling ratio
title Modeling of normalized frequency gradient for fused single mode fiber of coupling ratio
title_full Modeling of normalized frequency gradient for fused single mode fiber of coupling ratio
title_fullStr Modeling of normalized frequency gradient for fused single mode fiber of coupling ratio
title_full_unstemmed Modeling of normalized frequency gradient for fused single mode fiber of coupling ratio
title_short Modeling of normalized frequency gradient for fused single mode fiber of coupling ratio
title_sort modeling of normalized frequency gradient for fused single mode fiber of coupling ratio
topic Q Science (General)
T Technology (General)
url http://eprints.utm.my/5875/1/MODELING_OF_NORMALIZED_FREQUENCY_GRADIENT_FOR_FUSED_SINGLE_MODE_FIBER_OF_COUPLING_RATIO.pdf
work_keys_str_mv AT totosaktioto modelingofnormalizedfrequencygradientforfusedsinglemodefiberofcouplingratio
AT alijalil modelingofnormalizedfrequencygradientforfusedsinglemodefiberofcouplingratio
AT zainaljasman modelingofnormalizedfrequencygradientforfusedsinglemodefiberofcouplingratio
AT fadhalimohamed modelingofnormalizedfrequencygradientforfusedsinglemodefiberofcouplingratio