DocumentCode
1075259
Title
An accurate and efficient entire-domain basis Galerkin´s method for the integral equation analysis of integrated rectangular dielectric waveguides
Author
Athanasoulias, G. ; Uzunoglu, N.K.
Author_Institution
Dept. of Electr. & Comput. Eng., Nat. Tech. Univ. of Athens, Greece
Volume
43
Issue
12
fYear
1995
fDate
12/1/1995 12:00:00 AM
Firstpage
2794
Lastpage
2804
Abstract
The propagation characteristics of multiple coupled rectangular dielectric waveguides are investigated through an integral equation analysis. In contrast with the widely used subdomain-basis Galerkin´s method, in this work a novel set of entire-domain basis functions is introduced. This set consists of plane wave functions that satisfy Maxwell´s equations in each guiding region, therefore representing a proper expansion system. The simple form of the basis functions employed enables the accurate numerical evaluation of the spectral integrals, by means of an efficient asymptotic extraction technique. It is found that the computed dispersion curves presented for various single and coupled waveguides compare very favorably to published results of other methods. Finally, leakage effects in lossy waveguides are numerically treated for the first time, in view of mode transitions from leaky to bound regime. The technique presented in this paper is accurate, though conceptually simple, and can deal with a wide variety of integrated circuits and multilayered substrate configurations. It is also demonstrated that its main advantage is superior computational efficiency, since very satisfactory results are obtained with only a few expansion terms
Keywords
Galerkin method; dielectric waveguides; integral equations; integrated optics; optical dispersion; optical waveguide theory; rectangular waveguides; Galerkin method; asymptotic extraction technique; dispersion curves; entire-domain basis functions; integral equation analysis; integrated optical circuits; integrated rectangular dielectric waveguides; leakage effects; lossy waveguides; mode transitions; multilayered substrate configurations; multiple coupled waveguides; optical waveguides; plane wave functions; propagation characteristics; spectral integrals; Computational efficiency; Dielectric substrates; Integral equations; Maxwell equations; Moment methods; Optical waveguides; Rectangular waveguides; Submillimeter wave technology; Wave functions; Waveguide transitions;
fLanguage
English
Journal_Title
Microwave Theory and Techniques, IEEE Transactions on
Publisher
ieee
ISSN
0018-9480
Type
jour
DOI
10.1109/22.475637
Filename
475637
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