DocumentCode
1300213
Title
Bragg gratings in multimode and few-mode optical fibers
Author
Mizunami, Toru ; Djambova, Tzvetanka V. ; Niiho, Tsutomu ; Gupta, Sanjay
Author_Institution
Dept. of Electr. Eng., Kyushu Inst. of Technol., Kitakyushu, Japan
Volume
18
Issue
2
fYear
2000
Firstpage
230
Lastpage
235
Abstract
Bragg gratings in optical fibers in multimode propagation are investigated experimentally and theoretically. Bragg gratings formed in optical fibers in multimode propagation show multiple reflection peaks or multiple transmission dips in the reflection or transmission spectra, respectively. For standard graded-index multimode fiber, the number of reflection peaks of a Bragg grating depends on excitation condition of propagating modes. The number of reflection peaks of a Bragg grating at around 1.55 /spl mu/m is 19 for highly multimode excitation and 3-4 for lower order mode excitation. We analyze the phase-matching conditions of the propagating modes and identify half of the reflection peaks as the reflection to the same mode and the rest as the reflection to the neighboring modes. In dispersion-shifted fiber, a Bragg grating at around 0.8 /spl mu/m in three-mode propagation shows three reflection peaks in the reflection spectrum. The temperature dependence of each reflection peak is similar to that of a conventional Bragg grating in single-mode fiber. Polarization dependence measured on a Bragg grating in multimode graded-index fiber is negligible. An advantage of Bragg gratings in multimode fiber (MMF) and the applications are discussed.
Keywords
Bragg gratings; gradient index optics; optical fibre fabrication; optical fibre polarisation; optical fibre testing; reflectivity; 0.8 mum; 1.55 mum; Bragg grating; Bragg gratings; dispersion-shifted fiber; excitation condition; few-mode optical fibers; lower order mode excitation; multimode optical fibers; multimode propagation; multiple reflection peaks; multiple transmission dips; neighboring modes; phase-matching conditions; polarization dependence; propagating modes; reflection peaks; reflection spectra; reflection spectrum; standard graded-index multimode fiber; temperature dependence; transmission spectra; Bragg gratings; Fiber gratings; Frequency conversion; Optical fiber dispersion; Optical fiber polarization; Optical fibers; Optical frequency conversion; Optical propagation; Optical reflection; Temperature dependence;
fLanguage
English
Journal_Title
Lightwave Technology, Journal of
Publisher
ieee
ISSN
0733-8724
Type
jour
DOI
10.1109/50.822797
Filename
822797
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