DocumentCode
1116588
Title
Spectrally Resolved Transmission Loss in Gamma Irradiated Yb-Doped Optical Fibers
Author
Fox, Brian P. ; Schneider, Zachary V. ; Simmons-Potter, Kelly ; Thomes, William J., Jr. ; Meister, Dorothy C. ; Bambha, Ray P. ; Kliner, Dahv A V
Author_Institution
Univ. of Arizona, Tucson, AZ
Volume
44
Issue
6
fYear
2008
fDate
6/1/2008 12:00:00 AM
Firstpage
581
Lastpage
586
Abstract
Yb3+-doped silicate fibers are commonly employed in optical systems utilizing fiber lasers and amplifiers. Deployment of such materials and systems in space-based and other adverse radiation environments requires knowledge of their response to fluxes of ionizing radiation. This paper reports the results of gamma radiation exposures on a suite of passive, modern, highly Yb3+-doped aluminosilicate fibers. Of interest are the effects of total dose and dose rate as well as the development of radiation-induced absorption across a broad spectral window (1.0-1.7 mum). Results indicate that these fibers exhibit reasonable radiation resistance to gamma exposures typical of a five-year low-Earth-orbit environment. Maximum transmittance losses of less than 10% in the 1.0-1.7-mum spectral region for total gamma exposures of 2-5 krad (Si) were observed. In addition, it was found that the dependence of transmittance on radiation dose generally followed a power law that was dependent on dose rate.
Keywords
dosimetry; gamma-ray effects; optical fibre amplifiers; optical windows; Yb doped optical fibers; fiber laser amplifiers; gamma irradiated; maximum transmittance losses; optical systems; radiation dose; radiation resistance; spectral window; spectrally resolved transmission loss; wavelength 1.0 mum to 1.7 mum; Fiber lasers; Ionizing radiation; Laser modes; Optical fiber amplifiers; Optical fiber losses; Optical fibers; Optical materials; Propagation losses; Semiconductor optical amplifiers; Stimulated emission; Gamma irradiation; Yb-doped fibers; photodarkening; radiation effects; radiation-induced absorption; rare-earth doped fibers;
fLanguage
English
Journal_Title
Quantum Electronics, IEEE Journal of
Publisher
ieee
ISSN
0018-9197
Type
jour
DOI
10.1109/JQE.2008.919873
Filename
4479652
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