DocumentCode :
749366
Title :
Versatile Characterization of Specialty Fibers Using the Phase-Sensitive Optical Low-Coherence Reflectometry Technique
Author :
Gabet, Renaud ; Hamel, Philippe ; Jaouën, Yves ; Obaton, Anne-Francoise ; Lanticq, Vincent ; Debarge, Guy
Author_Institution :
Inst. TELECOM, TELECOM ParisTech, Paris, France
Volume :
27
Issue :
15
fYear :
2009
Firstpage :
3021
Lastpage :
3033
Abstract :
Emergence of new fibers families induces considerable requirements in terms of characterization and metrology (group delay, chromatic dispersion, birefringence, bending losses, etc.). The optical low-coherence reflectometry (OLCR) technique is demonstrated as a versatile method for the characterization of most types of optical fiber. A synthesis of multiple analysis concerning different families of specialty fibers including rare-earth-doped fibers, few-mode fibers, and microstructured fibers will be presented. OLCR allows measuring precisely the group velocity dispersion value for both polarization modes and birefringence. It is also possible to measure small refractive-index variations in a pumped Erbium-doped fiber. Unique dispersive properties of higher order modes fiber offer novel solutions for dispersion compensation or nonlinear effects management. OLCR can allow each LP mode characterization without the requirement for mode converters. A new method, called ldquotime-wavelength reflection mapping,rdquo based on the OLCR interferogram processing is applied to the determination of chromatic dispersion of each guided LP mode whatever their group index. Finally, different characterization results concerning photonics crystal fibers with guiding based on the conventional total internal reflection principle (high-index guiding) or photonic bandgap effect (low-index guiding) will be presented.
Keywords :
erbium; optical fibre amplifiers; optical fibre dispersion; optical fibre testing; photonic band gap; reflectometry; refractive index; JkJk:Er; birefringence; high index guiding; low index guiding; optical fiber; phase sensitive optical low coherence reflectometry technique; photonic bandgap effect; pumped fiber laser; refractive index variation; specialty fiber; time-wavelength reflection mapping; Birefringence; chromatic dispersion; interferometry; low-coherence; optical fibers;
fLanguage :
English
Journal_Title :
Lightwave Technology, Journal of
Publisher :
ieee
ISSN :
0733-8724
Type :
jour
DOI :
10.1109/JLT.2009.2020817
Filename :
4838934
Link To Document :
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