DocumentCode :
1479874
Title :
Yb _{2} O _{3} Doped Yttrium-Alumino-Silicate Nano-Particles Based LMA Optical Fibers for High-Pow
Author :
Paul, M.C. ; Kir´yanov, A.V. ; Barmenkov, Yu O. ; Das, S. ; Pal, M. ; Bhadra, S.K. ; Yoo, S. ; Boyland, A.J. ; Sahu, J.K. ; Martínez-Gamez, A. ; Lucio-Martínez, J.L.
Author_Institution :
Fiber Opt. & Photonic Div., Central Glass & Ceramic Res. Inst.-CSIR, Kolkata, India
Volume :
30
Issue :
13
fYear :
2012
fDate :
7/1/2012 12:00:00 AM
Firstpage :
2062
Lastpage :
2068
Abstract :
Yb2O3 doped yttrium-rich alumino-silicate nano-particles based D- and P- (pentagonal) shaped optical fibers with core diameter ~ 30-35 μ m are fabricated using the conventional MCVD process and solution doping technique. Parameters of different stages of the fiber preforms fabrication are optimized to get uniform distributions of Al, Y, F, and Yb ions in the core region, ensured by the data of an EPMA analysis. In the presence of small amounts of fluorine, the size of nano-particles is maintained within 5-10 nm; the EDX data reveal that the nano-particles are rich in yttrium-alumino-silicate phase and are dispersed uniformly across the preforms core. The critical parameters of the processes involved at the fibers fabrication along with the nano-structuring and spectroscopic features are highlighted. It is shown experimentally that the drawn D- and P- shaped fibers support high laser efficiency ( ~ 80% at 976-nm pumping) and demonstrate negligible photodarkening.
Keywords :
aluminium compounds; chemical vapour deposition; fibre lasers; nanoparticles; silicon compounds; ytterbium compounds; yttrium compounds; EDX data; EPMA analysis; LMA optical fibers; Y2O3-Al2O3-SiO2:Yb2O3; conventional MCVD process; core region; fibers fabrication; high-power fiber lasers; size 5 nm to 10 nm; solution doping technique; spectroscopic features; yttrium-alumino-silicate nanoparticles; yttrium-alumino-silicate phase; Fiber lasers; Fluorescence; Glass; Laser excitation; Optical fibers; Preforms; Pump lasers; Fiber optics; fiber lasers; nanoparticles;
fLanguage :
English
Journal_Title :
Lightwave Technology, Journal of
Publisher :
ieee
ISSN :
0733-8724
Type :
jour
DOI :
10.1109/JLT.2012.2191391
Filename :
6175914
Link To Document :
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