DocumentCode :
1918914
Title :
Frequency up-conversion and pulse compression mediated by soliton plasma interactions in gas-filled photonic crystal fiber
Author :
Holzer, P. ; Chang, Wenge ; Travers, J.C. ; Russell, Philip St.J
Author_Institution :
Max Planck Inst. for the Sci. of Light, Erlangen, Germany
fYear :
2013
fDate :
12-16 May 2013
Firstpage :
1
Lastpage :
1
Abstract :
Gas-filled hollow-core photonic crystal fiber (HC-PCF) is an ideal vehicle for studying nonlinear fiber optics in gaseous media [1]. It combines the merits of conventional fibers (tight single-mode confinement over long distances) with the advantages of gases: pressure-controlled dispersion, absence of optical damage and transparency in extreme wavelength ranges. In the case of kagomé-style HC-PCF, these features have permitted observation of highly efficient tunable deep-UV generation [2] and ionization-based nonlinear fiber optics [3,4]. In the latter case soliton self-compression produces intensities sufficient to partially ionize the filling gas (~1015 W/cm2), resulting in plasma-induced phase-modulation and a unique soliton self-frequency blue-shift. The initial dynamics of these phenomena are dominated by higher order soliton propagation and compression, followed by fission and the emission of multiple blue-shifting solitons. It has been predicted using perturbation theory, however, that fundamental solitons will self-frequency blue-shift in the absence of any higher order nonlinear effects [4]. In this paper we show numerically that a fundamental soliton can indeed cleanly blue-shift, and we go on to suggest how an all-fiber integrated device may be designed that allows tunable frequency up-conversion over an octave, combined with pulse compression.
Keywords :
holey fibres; integrated optics; ionisation; optical fibre dispersion; optical frequency conversion; optical pulse compression; optical solitons; optical tuning; perturbation theory; phase modulation; photonic crystals; plasma solitons; spectral line shift; all-fiber integrated device; conventional fibers; extreme wavelength ranges; fundamental solitons; gas-filled hollow-core photonic crystal fiber; gaseous media; higher order nonlinear effects; higher order soliton compression; higher order soliton propagation; highly efficient tunable deep-UV generation; ideal vehicle; ionization-based nonlinear fiber optics; kagome-style HC-PCF; multiple blue-shifting soliton emission; octave; optical damage; optical transparency; partial ionization; perturbation theory; plasma-induced phase-modulation; pressure-controlled dispersion; pulse compression; single-mode confinement; soliton plasma interactions; soliton self-compression; tunable frequency up-conversion; unique soliton self-frequency blue-shift; Optical fiber devices; Optical fiber dispersion; Optical fiber theory; Photonic crystal fibers; Solitons;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Lasers and Electro-Optics Europe (CLEO EUROPE/IQEC), 2013 Conference on and International Quantum Electronics Conference
Conference_Location :
Munich
Print_ISBN :
978-1-4799-0593-5
Type :
conf
DOI :
10.1109/CLEOE-IQEC.2013.6801071
Filename :
6801071
Link To Document :
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