DocumentCode :
1023923
Title :
Domain integral equation analysis of integrated optical channel and ridge waveguides in stratified media
Author :
Kolk, Evert W. ; Baken, Nico H G ; Blok, Hans
Author_Institution :
PTT Res., Leidschendam, Netherlands
Volume :
38
Issue :
1
fYear :
1990
fDate :
1/1/1990 12:00:00 AM
Firstpage :
78
Lastpage :
85
Abstract :
A domain integral equation approach to computing both the propagation constants and the corresponding electromagnetic field distributions of guided waves in an integrated optical waveguide is discussed. The waveguide is embedded in a stratified medium. The refractive index of the waveguide may be graded, but the refractive indices of the layers of the stratified medium are assumed to be piecewise homogeneous. The waveguide is regarded as a perturbation of its embedding, so the electric field strength can be expressed in terms of domain integral representation. The kernel of this integral consists of a dyadic Green´s function, which is constructed using an operator approach. By investigating the electric field strength within the waveguide, it is possible to derive an integral equation that represents an eigenvalue problem that is solved numerically by applying the method of moments. The application of the domain integral equation approach in combination with a numerically stable evaluation of the Green´s kernel functions provides a new and valuable tool for the characterization of integrated optical waveguides embedded in stratified media. Numerical results for various channel and ridge waveguides are presented and are compared with those of other methods where possible
Keywords :
Green´s function methods; guided light propagation; integral equations; integrated optics; optical waveguide theory; Green´s kernel functions; channel waveguides; domain integral equation; dyadic Green´s function; eigenvalue problem; electric field strength; electromagnetic field distributions; guided waves; integral equation analysis; integrated optical waveguide; moments method; operator approach; propagation constants; refractive index; ridge waveguides; stratified media; Distributed computing; Electromagnetic waveguides; Integral equations; Integrated optics; Kernel; Optical computing; Optical refraction; Optical variables control; Optical waveguides; Propagation constant;
fLanguage :
English
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9480
Type :
jour
DOI :
10.1109/22.44159
Filename :
44159
Link To Document :
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