Title :
1880-nm Broadband ASE Generation With Bismuth–Thulium Codoped Fiber
Author :
Halder, Abhishek ; Paul, M.C. ; Harun, Sulaiman Wadi ; Ali, S.M.M. ; Saidin, N. ; Damanhuri, S.S.A. ; Ahmad, Harith ; Das, S. ; Pal, Monalisa ; Bhadra, S.K.
Author_Institution :
Fiber Opt. & Photonics Div., Central Glass & Ceramic Res. Inst., Kolkata, India
Abstract :
A broadband amplified spontaneous emission (ASE) generation in 1880-nm region is demonstrated by employing a newly developed single-mode Tm-Bi codoped fiber (TBF) in conjunction with 793-nm pumping for the first time. The TBF was obtained by drawing a preform, which was fabricated using a deposition of porous layer by the modified chemical vapor deposition (MCVD) process in conjunction with solution doping technique. The highest Bi3+ and Tm3+ concentrations of 0.35 wt.% and 0.9 wt.%, respectively, were successfully achieved to generate ASE centered at 1880-nm region. The ASE peaked at - 47.2 dBm with 3-dB spectral width ranging from 1817 to 1984 nm with 1.0-m-long TBF and 200-mW 793-nm pump power, which was generated due to the transition of thulium ions from 3 F4 to 3H6 with some assistance from bismuth to thulium ion energy transfer. The use of a secondary pump of 1550 nm is also shown to improve the ASE generation.
Keywords :
bismuth; chemical vapour deposition; doping; drawing (mechanical); optical fibre fabrication; optical pumping; porous materials; preforms; spectral line breadth; superradiance; thulium; MCVD process; TBF; bismuth ion energy transfer; broadband ASE generation; broadband amplified spontaneous emission generation; modified chemical vapor deposition; porous layer; power 200 mW; preform drawing; pump power; single-mode bismuth-thulium codoped fiber; size 1 m; solution doping technique; spectral width; thulium ion energy transfer; thulium ions; wavelength 1550 nm; wavelength 1817 nm to 1984 nm; wavelength 793 nm; Bismuth; Broadband communication; Doping; Fiber lasers; Glass; Optical fibers; Preforms; 1.8-micron ASE source; Bismuth–thulium codoped fiber; modified chemical vapor deposition (MCVD);
Journal_Title :
Photonics Journal, IEEE
DOI :
10.1109/JPHOT.2012.2221691