DocumentCode
1067181
Title
Spatial optical solitons in waveguide arrays
Author
Sukhorukov, Andrey A. ; Kivshar, Yuri S. ; Eisenberg, Hagai S. ; Silberberg, Yaron
Author_Institution
Res. Sch. of Phys. Sci. & Eng., Australian Nat. Univ., Canberra, ACT, Australia
Volume
39
Issue
1
fYear
2003
fDate
1/1/2003 12:00:00 AM
Firstpage
31
Lastpage
50
Abstract
We overview theoretical and experimental results on spatial optical solitons excited in arrays of nonlinear waveguides. First, we briefly summarize the basic properties of the discrete nonlinear Schrodinger (NLS) equation frequently employed to study spatially localized modes in arrays, the so-called discrete solitons. Then, we introduce an improved analytical model that describes a periodic structure of thin-film nonlinear waveguides embedded into an otherwise linear dielectric medium. Such a model of waveguide arrays goes beyond the discrete NLS equation and allows studying many new features of the nonlinear dynamics in arrays, including the complete bandgap spectrum, modulational instability of extended modes, different types of gap solitons, the mode oscillatory instability, the instability-induced soliton dynamics, etc. Additionally, we summarize the recent experimental results on the generation and steering of spatial solitons and diffraction management in waveguide arrays. We also demonstrate that many effects associated with the dynamics of discrete gap solitons can be observed in a binary waveguide array. Finally, we discuss the important concept of two-dimensional (2-D) networks of nonlinear waveguides, not yet verified experimentally, which provides a roadmap for the future developments of this field. In particular, 2-D networks of nonlinear waveguides may allow a possibility of realizing useful functional operations with discrete solitons such as blocking, routing, and time gating.
Keywords
Kronig-Penney model; Schrodinger equation; optical self-focusing; optical solitons; optical waveguide theory; optical waveguides; tight-binding calculations; analytical model; binary waveguide array; blocking; complete bandgap spectrum; diffraction management; discrete nonlinear Schrodinger equation; extended modes; functional operations; gap solitons; instability-induced soliton dynamics; linear dielectric medium; mode oscillatory instability; modulational instability; nonlinear waveguides; periodic structure; routing; spatial optical solitons; spatially localized modes; thin-film nonlinear waveguides; time gating; waveguide arrays; Analytical models; Dielectric thin films; Differential equations; Nonlinear equations; Optical arrays; Optical solitons; Optical waveguide theory; Optical waveguides; Periodic structures; Waveguide discontinuities;
fLanguage
English
Journal_Title
Quantum Electronics, IEEE Journal of
Publisher
ieee
ISSN
0018-9197
Type
jour
DOI
10.1109/JQE.2002.806184
Filename
1158804
Link To Document