DocumentCode :
1431027
Title :
Highly Efficient Wavelength-Tunable Anti-Stokes Signal Conversion of Femtosecond Pulses in the Fundamental Mode of Photonic Crystal Fiber
Author :
Yuan, Jinhui ; Sang, Xinzhu ; Yu, Chongxiu ; Li, Shuguang ; Zhou, Guiyao ; Hou, Lantian
Author_Institution :
Key Lab. of Inf. Photonics & Opt. Commun., Beijing Univ. of Posts & Telecommun., Beijing, China
Volume :
46
Issue :
5
fYear :
2010
fDate :
5/1/2010 12:00:00 AM
Firstpage :
728
Lastpage :
733
Abstract :
With the photonic crystal fiber (PCF) with the zero dispersion wavelength of fundamental mode around 830 nm designed and fabricated in our lab, the anti-Stokes signals from 603 to 535 nm are efficiently generated in the fundamental mode by Ti:sapphire laser with central wavelength of 820 nm and pulse width of 150 fs. When the pump power increases from 80 to 320 mW in a separation of 40 mW, the output powers of anti-Stokes signals increase 6 times, and the maximum power ratio of anti-Stokes signal at 535 nm to the residual pump component is estimated as 12:1. The maximum output power ratio of the anti-Stokes signal at 535 nm and the Stokes component at 865 nm is about 2:1. The maximum conversion efficiency of P a/P p0 in experiment can achieve up to 42%, and the possible reasons for discrepancy between experimental and theoretical results are analyzed. Moreover, the influences of other factors on experiment process are elementarily discussed.
Keywords :
coherent antiStokes Raman scattering; high-speed optical techniques; holey fibres; laser tuning; optical fibre dispersion; optical wavelength conversion; photonic crystals; sapphire; titanium; Al2O3:Ti; femtosecond pulses; photonic crystal fiber; wavelength 535 nm; wavelength 603 nm; wavelength 820 nm; wavelength tunable anti-Stokes signal conversion; Distributed power generation; Fiber lasers; Laser modes; Optical design; Optical pulse generation; Photonic crystal fibers; Power generation; Signal design; Signal generators; Wavelength conversion; Anti-stokes signals; PCF; fiber design and fabrication; fundamental mode; phased-matched FWM;
fLanguage :
English
Journal_Title :
Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
0018-9197
Type :
jour
DOI :
10.1109/JQE.2009.2034754
Filename :
5423319
Link To Document :
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