DocumentCode
864576
Title
Radiation Modes and Roughness Loss in High Index-Contrast Waveguides
Author
Poulton, Christopher G. ; Koos, Christian ; Fujii, Masafumi ; Pfrang, Andreas ; Schimmel, Thomas ; Leuthold, Jürg ; Freude, Wolfgang
Author_Institution
Inst. of High-Frequency & Quantum Electron., Karlsruhe Univ.
Volume
12
Issue
6
fYear
2006
Firstpage
1306
Lastpage
1321
Abstract
We predict the scattering loss in rectangular high index-contrast waveguides, using a new variation of the classical approach of coupled-mode theory. The loss predicted by this three-dimensional (3-D) model is considerably larger than that calculated using previous treatments that approximate the true 3-D radiation modes with their two-dimensional counterparts. The 3-D radiation modes of the ideal waveguide are expanded in a series of cylindrical harmonics, and the coupling between the guided and radiation modes due to the sidewall perturbation is computed. The waveguide attenuation can then be calculated semianalytically. It is found that the dominant loss mechanism is radiation rather than reflection, and that the transverse electric polarization exhibits much larger attenuation than transverse magnetic polarization. The method also gives simple rules that can be used in the design of low-loss optical waveguides. The structural properties of sidewall roughness of an InGaAs/InP pedestal waveguide are measured using atomic force microscopy, and the measured attenuation is found to compare well with that predicted by the model
Keywords
III-V semiconductors; atomic force microscopy; coupled mode analysis; gallium arsenide; indium compounds; optical losses; optical waveguide theory; refractive index; 3-D radiation modes; InGaAs-InP; InGaAs/InP pedestal waveguide; atomic force microscopy; coupled-mode theory; high index-contrast waveguides; roughness loss; scattering loss; sidewall roughness; transverse electric polarization; Atomic force microscopy; Atomic measurements; Attenuation measurement; Force measurement; Optical attenuators; Optical polarization; Optical scattering; Optical waveguides; Predictive models; Rectangular waveguides; Attenuation; integrated optics; radiation modes; roughness; waveguides;
fLanguage
English
Journal_Title
Selected Topics in Quantum Electronics, IEEE Journal of
Publisher
ieee
ISSN
1077-260X
Type
jour
DOI
10.1109/JSTQE.2006.881648
Filename
4032688
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