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Non-linear spectral broadening across multiple bandgaps of all solid photonic crystal fibers
Author(s) -
Vincent Pureur,
John M. Dudley
Publication year - 2010
Publication title -
proceedings of spie, the international society for optical engineering/proceedings of spie
Language(s) - English
Resource type - Conference proceedings
SCImago Journal Rank - 0.192
H-Index - 176
eISSN - 1996-756X
pISSN - 0277-786X
DOI - 10.1117/12.854041
Subject(s) - supercontinuum , photonic crystal , photonic crystal fiber , photonics , optics , attenuation , dispersion (optics) , femtosecond , materials science , doppler broadening , nonlinear system , band gap , optoelectronics , optical fiber , physics , spectral line , laser , quantum mechanics , astronomy
International audienceNonlinear spectral broadening in two dimensional solid core photonic bandgap fibers is numerically investigated in the anomalous dispersion regime. A frequency-domain approach is used to simulate supercontinuum generation when femtosecond pulses are launched into a transmission band of a typical structure. The consequences on the output characteristics of the strong frequency dependence of the nonlinear parameter, the dispersion and the confinement losses of this kind of micro-structured fiber are highlighted, and we point out the necessity to include all of them in any numerical modeling of experiments. This numerical approach allows us to consider also the propagation of field energy in multiple photonic bandgaps simultaneously, and we show that efficient nonlinear spectral energy transfer is possible between adjacent and several photonic bandgaps across spectral regions of high attenuation

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