DocumentCode :
1084671
Title :
Method for Predicting Rayleigh Scattering Loss of Silica-Based Optical Fibers
Author :
Tsujikawa, Kyozo ; Tajima, Katsusuke ; Shiraki, Kazuyuki ; Sankawa, Izumi
Author_Institution :
NTT Corp., Tsukuba
Volume :
25
Issue :
8
fYear :
2007
Firstpage :
2122
Lastpage :
2128
Abstract :
In order to fabricate low-loss silica-based fibers cost-effectively, we propose a method that can be utilized to predict their Rayleigh scattering loss before they are drawn. The method is based on the relationship between their fictive temperature and drawing conditions such as drawing speed, length, and temperature distribution in the furnace. First, we constructed a theoretical model that describes the effects of fictive temperature, dopant concentration, and optical power distribution in the fiber cross section on the Rayleigh scattering loss. We applied the model to a GeO2-doped silica-core single-mode fiber and confirmed that the experimental and calculated Rayleigh scattering values were in good agreement within a relative error of 3%. Using the model as a basis, we demonstrate that the Rayleigh scattering loss of silica-based fibers can be minimized by optimizing their cooling conditions in accordance with their drawing speed.
Keywords :
Rayleigh scattering; germanium compounds; optical fibre fabrication; optical fibre losses; silicon compounds; GeO2 - Binary; Rayleigh scattering loss; SiO2 - Binary; dopant concentration; fiber cross section; fictive temperature; optical power distribution; silica-based optical fibers; silica-core single-mode fiber; Cooling; Fiber nonlinear optics; Glass; High speed optical techniques; Optical fiber losses; Optical fibers; Optical scattering; Rayleigh scattering; Semiconductor process modeling; Temperature distribution; Drawing speed; Rayleigh scattering; drawing temperature; fictive temperature; optical fiber; optical losses;
fLanguage :
English
Journal_Title :
Lightwave Technology, Journal of
Publisher :
ieee
ISSN :
0733-8724
Type :
jour
DOI :
10.1109/JLT.2007.899789
Filename :
4285910
Link To Document :
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