Title :
Nonlinear modes, resonant trapping, and soliton emission in engineered PPLN structures
Author :
Baronio, Fabio ; De Angelis, Costantino
Author_Institution :
Dipt. di Elettronica per l´´Automazione, Brescia Univ., Italy
fDate :
10/1/2002 12:00:00 AM
Abstract :
We investigate nonlinear waveguiding effects, due to second-order nonlinearity, in quasi-phase-matching (QPM) structures in periodically poled lithium niobate (PPLN) with engineered patterns. We specifically study the existence and the propagation of pure nonlinear guided modes in QPM gratings with different domain lengths in different transverse regions of the medium, without any waveguiding effect due to linear refractive index changes. On one hand, the obtained results enlighten the possibility of soliton operation at lower intensity thresholds than in standard not-tailored PPLN structures. On the other hand, in such nonlinear engineered structures, we reveal the presence of intensity-dependent attractive and repulsive potential wells that can be exploited for soliton control (resonant trapping and emission) in quadratic nonlinear media.
Keywords :
dielectric polarisation; high-speed optical techniques; lithium compounds; nonlinear optical susceptibility; optical harmonic generation; optical phase matching; optical solitons; optical waveguide theory; variational techniques; LiNbO3; attractive potential wells; cascading phenomena; engineered patterns; intensity-dependent potential wells; nonlinear trapped mode; nonlinear waveguiding effects; optical signal processing; periodically poled lithium niobate; pure nonlinear guided modes; quadratic nonlinear media; quasi-phase-matching structures; repulsive potential wells; resonant trapping; second-harmonic generation; second-order nonlinearity; slab waveguides; soliton control; soliton emission; ultrafast optics; variational formalism; Gratings; Lithium niobate; Nonlinear optics; Optical frequency conversion; Optical materials; Optical refraction; Optical signal processing; Optical solitons; Resonance; Ultrafast optics;
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2002.802956