DocumentCode :
1000497
Title :
Defect Bragg Fiber With Low Loss for Broadband and Zero Dispersion Slow Light
Author :
Lin, Chenxi ; Zhang, Wei ; Huang, Yidong ; Peng, Jiangde
Author_Institution :
Tsinghua Univ., Beijing
Volume :
25
Issue :
12
fYear :
2007
Firstpage :
3776
Lastpage :
3783
Abstract :
Narrow bandwidth and large group velocity (vg) dispersion are two fatal limitations of slow light in Bragg fibers. In this paper, by introducing a well-designed defect layer into the cladding of the Bragg fiber, the modal characteristics are modified by the coupling between the core mode and the defect mode. The defect location mainly determines the coupling strength and, thus, exerts a strong influence on vg and dispersion. The defect thickness mainly determines the resonant wavelength of the defect waveguide and, thus, the wavelength where the modal coupling takes place. Consequently, the two limitations of the slow-light propagation in the Bragg fiber are overcome through proper optimization of the defect parameters. Around 1550 nm, a slow-light bandwidth up to 90 nm is achieved at an average vg of c/5 (c is the light velocity in a vacuum) under N = 2, whereas an average vg of c/10 is achieved with a bandwidth of 20 nm under N = 5. On the other hand, the slow-light propagation of vg = 0.074c with both zero dispersion and zero dispersion slope is achieved, which is able to support applications requiring a subterahertz bandwidth of optical pulse. All of the fiber designs ensure sufficient low losses and good optical field distribution. The results are helpful in developing various Bragg-fiber-based slow-light devices.
Keywords :
Bragg gratings; high-speed optical techniques; optical design techniques; optical fibre cladding; optical fibre couplers; optical fibre dispersion; optical fibre losses; Bragg fiber cladding; broadband dispersion; coupling strength; defect Bragg fiber; defect thickness; defect waveguide; fiber designs; group velocity; modal coupling; optical field distribution; optical pulse; resonant wavelength; subterahertz bandwidth; zero dispersion slow light; Bandwidth; Fiber nonlinear optics; Nonlinear optics; Optical bistability; Optical fiber devices; Optical propagation; Optical scattering; Optical sensors; Optical solitons; Slow light; Bragg fiber; dispersion; group velocity; loss; slow light;
fLanguage :
English
Journal_Title :
Lightwave Technology, Journal of
Publisher :
ieee
ISSN :
0733-8724
Type :
jour
DOI :
10.1109/JLT.2007.909347
Filename :
4397005
Link To Document :
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