DocumentCode
1368242
Title
Cladding-mode-resonances in air-silica microstructure optical fibers
Author
Eggleton, B.J. ; Westbrook, P.S. ; White, C.A. ; Kerbage, C. ; Windeler, R.S. ; Burdge, G.L.
Author_Institution
Lucent Technol. Bell Labs., Murray Hill, NJ, USA
Volume
18
Issue
8
fYear
2000
Firstpage
1084
Lastpage
1100
Abstract
We present a comprehensive study of mode propagation in a range of different air-silica microstructured fibers. The inscription of both Bragg and long-period gratings (LPGs) into the photosensitive core region of microstructured air-silica fibers has allowed us to generate complex transmission spectra from a range of fibers with various fill fractions and with increasing air-clad hole diameters. The spectral characteristics for typical air-hole geometry´s are explained qualitatively and modeled using beam propagation simulations, where the numerical modeling corroborates the experimental measurements. Specifically, the data reveal the propagation of higher order leaky modes in fibers with periodically spaced air-holes, and relatively small air-fill fraction. And as the air-hole diameter increases, spectra show cladding modes defined solely by the inner air-clad region. We describe these measurements and corresponding simulations and discuss their implications for the understanding of such air-hole structures.
Keywords
Bragg gratings; diffraction gratings; optical fibre cladding; optical fibre losses; optical fibre testing; resonant states; Bragg gratings; air-clad hole diameters; air-hole diameter increase; air-hole structures; air-silica microstructure optical fibers; beam propagation simulations; cladding-mode-resonances; complex transmission spectra; fill fractions; higher order leaky modes; inner air-clad region; long-period gratings; microstructured air-silica fibers; photosensitive core region; spectral characteristics; Microstructure; Optical fiber devices; Optical fiber polarization; Optical fibers; Optical propagation; Optical reflection; Photonic band gap; Photonic crystal fibers; Silicon compounds; Solid modeling;
fLanguage
English
Journal_Title
Lightwave Technology, Journal of
Publisher
ieee
ISSN
0733-8724
Type
jour
DOI
10.1109/50.857754
Filename
857754
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