DocumentCode :
1781919
Title :
Ultrafast solitonic nonlinear directional couplers utilizing multicomponent glass dual-core photonic crystal fibres
Author :
Stajanca, P. ; Buczynski, Ryszard ; Andriukaitis, G. ; Balciunas, T. ; Fan, G. ; Baltuska, A. ; Bugar, I.
Author_Institution :
Dept. of Exp. Phys., Comenius Univ., Bratislava, Slovakia
fYear :
2014
fDate :
6-10 July 2014
Firstpage :
1
Lastpage :
4
Abstract :
We present experimental and numerical progress in the development of nonlinear directional couplers based on multicomponent glass photonic crystal fibre. The first part of the paper reports a multi-wavelength nonlinear switch, operating in ultralong wavelength optical communication band, based on a special square lattice dual-core photonic crystal fibre excited with femtosecond pulses. The soliton-fission process in this coupler resulting in switching possibilities of spectrally separated solitons shifted away from the excitation wavelength. Due to the fibre birefringence the switching wavelength can be tuned by rotating the polarization of the excitation field. Motivated by the experimental results, the numerical studies were focused on single fundamental soliton switching that exhibits high extinction ratios. After numerical optimization of the photonic crystal fibre structure, the resultant coupler design was further analysed from the aspect of nonlinear propagation based on coupled nonlinear Schrödinger equations. The simulated nonlinear directional coupler indicates the possibility to realize a high-extinction-ratio switch of sub-nJ 100 fs pulses which are simultaneously compressed below 15 fs.
Keywords :
Schrodinger equation; birefringence; high-speed optical techniques; holey fibres; optical directional couplers; optical glass; optical solitons; optimisation; photonic crystals; coupled nonlinear Schrodinger equations; excitation field polarization; excitation wavelength; extinction ratios; femtosecond pulses; fibre birefringence; multicomponent glass dual-core photonic crystal fibres; multiwavelength nonlinear switch; nonlinear propagation; numerical optimization; soliton-fission process; square lattice; ultrafast solitonic nonlinear directional couplers; ultralong wavelength optical communication band; Couplings; Nonlinear optics; Optical fibers; Optical switches; Photonic crystal fibers; Solitons; all-optical switch; dual-core fibre; nonlinear directional coupler; optical soliton; photonic crystal fibre; supercontinuum generation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Transparent Optical Networks (ICTON), 2014 16th International Conference on
Conference_Location :
Graz
Type :
conf
DOI :
10.1109/ICTON.2014.6876528
Filename :
6876528
Link To Document :
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