DocumentCode :
878658
Title :
Er-doped superfluorescent fiber source with a ±0.5-ppm long-term mean-wavelength stability
Author :
Park, Hee Gap ; Digonnet, Michel ; Kino, Gordon
Author_Institution :
Dept. of Phys., Chonbuk Nat. Univ., Chonju, South Korea
Volume :
21
Issue :
12
fYear :
2003
Firstpage :
3427
Lastpage :
3433
Abstract :
We report an Er-doped superfluorescent fiber source (SFS) with a record mean-wavelength stability of ±0.5 ppm over 17 h. This breakthrough was achieved in a double-pass SFS by implementing several improvements, namely 1) controlling all the parameters that affect its mean wavelength, including the pump diode temperature and current, 2) reducing polarization-induced drifts in mean wavelength with a Faraday rotator mirror and a long Er-doped fiber (EDF), and 3) getting rid of polarization controllers to eliminate polarization-dependent loss. The long-term mean-wavelength variations of this SFS were due almost entirely to variations in the EDF temperature. When the SFS temperature was allowed to vary, by calibrating its mean-wavelength dependence on temperature, it was possible to predict the mean wavelength to a ±2-ppm precision by simply measuring the EDF temperature. The same configuration was also implemented with a different Er-doped fiber to achieve an even lower dependence on EDF temperature. When controlling the temperature of this second SFS to about ±0.5°C, it exhibited a stability of ±0.5 ppm over 17 h. These new developments constitute an important step toward a practical high-grade fiber-optic gyroscope.
Keywords :
Faraday effect; erbium; fibre lasers; fibre optic gyroscopes; laser variables measurement; light sources; mirrors; optical fibre losses; optical fibre polarisation; optical pumping; stability; superradiance; Er-doped fiber; Er-doped temperature; Faraday rotator mirror; SFS temperature; fiber-optic gyroscope; mean-wavelength stability; polarization-dependent loss; pump diode current; pump diode temperature; superfluorescent fiber source; Gyroscopes; Laboratories; Laser excitation; Laser stability; Optical feedback; Optical fiber polarization; Optical fibers; Temperature control; Temperature dependence; Wavelength measurement;
fLanguage :
English
Journal_Title :
Lightwave Technology, Journal of
Publisher :
ieee
ISSN :
0733-8724
Type :
jour
DOI :
10.1109/JLT.2003.822539
Filename :
1263765
Link To Document :
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