DocumentCode :
901250
Title :
Pump-induced refractive index modulation and dispersions in Er3+-doped fibers
Author :
Thirstrup, Carsten ; Shi, Yuan ; Pálsdóttir, Bera
Author_Institution :
Mikroelektronik Centre, Tech. Univ. Denmark, Lyngby, Denmark
Volume :
14
Issue :
5
fYear :
1996
fDate :
5/1/1996 12:00:00 AM
Firstpage :
732
Lastpage :
738
Abstract :
A novel measurement system provides determination of pump induced phase shifts in erbium doped fibers with an accuracy of ~π/20. Using this system, a systematical analysis of the pump induced modulation of the refractive index and dispersions for a signal at 1550 nm and a pump at 980 nm is reported. The analysis contains measurements of pump induced refractive index changes as function of wavelength, pump power, and doping concentration. A model taking account of the contribution to the refractive index changes from optical transitions between 4 I15/2 states and 4I13/2 states in Er3+ yields good agreement to experimental results apart from a wavelength independent offset. The offset is interpreted to originate from high energetic optical transitions. The results show that for a large refractive index modulation, a short and highly doped fiber should be used with limited amplified spontaneous emission effect. In optical communication systems comprising erbium doped fiber amplifiers, a tradeoff between dispersion and amplification must be made
Keywords :
erbium; fibre lasers; optical fibre dispersion; optical fibre testing; optical modulation; optical pumping; refractive index; superradiance; 1550 nm; 980 nm; Er3+-doped fibers; accuracy; amplification; dispersions; doping concentration; erbium doped fiber amplifiers; high energetic optical transitions; highly doped fiber; limited amplified spontaneous emission effect; measurement system; optical communication systems; optical transitions; pump induced phase shifts; pump power; pump-induced refractive index modulation; short fiber; wavelength dependence; wavelength independent offset; Erbium; Optical fiber communication; Optical pumping; Optical refraction; Optical variables control; Phase measurement; Power measurement; Refractive index; Signal analysis; Wavelength measurement;
fLanguage :
English
Journal_Title :
Lightwave Technology, Journal of
Publisher :
ieee
ISSN :
0733-8724
Type :
jour
DOI :
10.1109/50.495152
Filename :
495152
Link To Document :
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