DocumentCode :
1514875
Title :
A wavelet formulation of the finite-difference method: full-vector analysis of optical waveguide junctions
Author :
Fujii, Masafumi ; Hoefer, Wolfgang J R
Author_Institution :
Dept. of Electr. & Comput. Eng., Victoria Univ., BC, Canada
Volume :
37
Issue :
8
fYear :
2001
fDate :
8/1/2001 12:00:00 AM
Firstpage :
1015
Lastpage :
1029
Abstract :
We have developed an efficient, large-stencil finite-difference scheme of the time-dependent Maxwell´s curl equations based on the wavelet-collocation formulation in the time-domain. The proposed scheme enables, for the first time within a limited computational resource, full-vector analysis of three-dimensional rib waveguides that are typically used in integrated planar optical devices. The formulation takes advantage of compactly-supported interpolating bases to expand and represent the electric and magnetic fields. Moreover, unlike the well-known beam propagation methods, the numerical scheme is based on the first-principle algorithm with no explicit approximation, and thus rigorous and versatile for various types of boundary conditions. We demonstrate the efficiency of the method by first analyzing a straight rib-waveguide and examining the convergence of the results. Then we investigate a Y-shaped junction structure that is electrically too large to analyze with the conventional finite-difference time-domain scheme
Keywords :
Maxwell equations; convergence of numerical methods; finite difference time-domain analysis; interpolation; optical planar waveguides; optical waveguide theory; rib waveguides; vectors; waveguide junctions; wavelet transforms; Deslauriers-Dubuc interpolating basis functions; Y-shaped junction structure; biorthogonal wavelets; compactly-supported interpolating bases; convergence; finite-difference method; first-principle algorithm; full-vector analysis; integrated planar optical devices; large-stencil finite-difference scheme; numerical scheme; optical waveguide junctions; three-dimensional rib waveguides; time-dependent Maxwell curl equations; time-domain; wavelet formulation; wavelet-collocation formulation; Finite difference methods; Magnetic analysis; Magnetic fields; Maxwell equations; Optical computing; Optical devices; Optical planar waveguides; Optical waveguides; Planar waveguides; Time domain analysis;
fLanguage :
English
Journal_Title :
Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
0018-9197
Type :
jour
DOI :
10.1109/3.937391
Filename :
937391
Link To Document :
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