DocumentCode :
1328081
Title :
1.06 \\mu m Picosecond Pulsed, Normal Dispersion Pumping for Generating Efficient Broadband Infrared Supercontinuum in Meter-Length Single-Mode Tellurite Holey Fiber With High
Author :
Shi, Jindan ; Feng, Xian ; Horak, Peter ; Chen, Kangkang ; Teh, Peh Siong ; Alam, Shaif-ul ; Loh, Wei H. ; Richardson, David J. ; Ibsen, Morten
Author_Institution :
Optoelectron. Res. Centre, Univ. of Southampton, Southampton, UK
Volume :
29
Issue :
22
fYear :
2011
Firstpage :
3461
Lastpage :
3469
Abstract :
We investigate efficient broadband infrared supercontinuum generation in meter-length single-mode small-core tellurite holey fiber. The fiber is pumped by 1.06 μm picosecond pulses in the normal dispersion region. The high Raman gain coefficient and the broad Raman gain bands of the tellurite glass are exploited to generate a cascade of Raman Stokes orders, which initiate in the highly normal dispersion region and quickly extend to longer wavelengths across the zero dispersion wavelength with increasing pump power. A broadband supercontinuum from 1.06 μm to beyond 1.70 μm is generated. The effects of the pump power and of the fiber length on the spectrum and on the power conversion efficiency from the pump to the supercontinuum are discussed. Power scaling indicates that using this viable normal dispersion pumping scheme, 9.5 W average output power of infrared supercontinuum and more than 60% conversion efficiency can be obtained from a 1 m long tellurite fiber with a large mode area of 500 μm2 .
Keywords :
high-speed optical techniques; holey fibres; optical fibre dispersion; optical glass; optical pumping; power conversion; supercontinuum generation; Raman Stokes orders; TeO2-ZnO-Na2O; broad Raman gain bands; broadband infrared supercontinuum generation; dispersion wavelength; high Raman gain coefficient; meter-length single-mode small core tellurite holey fiber; picosecond pulsed normal dispersion pumping; power 9.5 W; power conversion efficiency; power scaling; pump power; size 1 m; tellurite glass; wavelength 1.06 mum; Glass; Hafnium; Optical fiber dispersion; Optical fibers; Silicon compounds; Stimulated emission; Nonlinear optics; Raman scattering; nonsilica glass fiber; supercontinuum (SC) generation;
fLanguage :
English
Journal_Title :
Lightwave Technology, Journal of
Publisher :
ieee
ISSN :
0733-8724
Type :
jour
DOI :
10.1109/JLT.2011.2169490
Filename :
6026889
Link To Document :
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