DocumentCode :
2241480
Title :
Radiation resistant optical fiber for visible region
Author :
Bhattacharya, Archi ; Pal, Arnab ; Bhowmick, Goutam Kumar ; Saha, Abhijit ; Dasgupta, Kamal ; Sen, Ranjan
Author_Institution :
Central Glass & Ceramic Res. Inst., Kolkata, India
fYear :
2011
fDate :
13-16 Nov. 2011
Firstpage :
1
Lastpage :
5
Abstract :
Radiation resistance property of a series of optical preforms/fibers of different compositions including those available commercially has been investigated to find out a suitable fiber in the UV-visible wavelength range. The fibers drawn from commercial preforms exhibit feeble transmission in the UV zone prior to the radiation exposure and considerable darkening even with very low dose of radiation; although the preforms contain high OH in the core and it is claimed that higher OH content provides better transmission and radiation tolerance in the UV region. Radiation Induced Attenuation (RIA) dynamics for the wavelength range of 200 to 850 nm has been characterized `real-time´ under γ radiation. Dependence of RIA on the OH concentration in the core has been analyzed for wavelength band of 400-500 nm and at 630 nm. The generation of E´ and NBOH color centers is responsible for the absorption at the above two wavelength bands respectively and is strongly influenced by the fiber composition. The effect of dose rate up to the accumulated dose of 1MRad has been studied. This systematic study led to the fabrication of a fiber with better radiation resistance characteristics in the wavelength range of 400-700 nm with out any radiation induced absorption peak at 630 nm.
Keywords :
colour centres; drawing (mechanical); gamma-ray effects; optical fibre cladding; optical fibre fabrication; preforms; ultraviolet spectra; visible spectra; γ radiation; E color centers; NBOH color centers; OH concentration; RIA dynamics; UV zone; UV-visible wavelength; darkening; feeble transmission; fiber composition; fiber drawing; fiber fabrication; fibre core; optical preforms; radiation dose; radiation exposure; radiation induced absorption; radiation induced attenuation; radiation resistance property; radiation resistant optical fiber; radiation tolerance; wavelength 200 nm to 850 nm; Abstracts; Deuterium; Integrated optics; Optical fibers; Optical Fiber; Radiation Induced Attenuation; Visible region;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Communications and Photonics Conference and Exhibition, 2011. ACP. Asia
Conference_Location :
Shanghai
ISSN :
2162-108X
Print_ISBN :
978-0-8194-8961-6
Type :
conf
DOI :
10.1117/12.905431
Filename :
6210598
Link To Document :
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