DocumentCode
1114296
Title
Fast-Multipole Analysis of Electromagnetic Scattering by Photonic Crystal Slabs
Author
Pissoort, Davy ; Michielssen, Eric ; Vande Ginste, Dries ; Olyslager, Femke
Author_Institution
Dept. of Inf. Technol., Ghent Univ., Ghent, Belgium
Volume
25
Issue
9
fYear
2007
Firstpage
2847
Lastpage
2863
Abstract
In this paper, a multilevel fast-multipole algorithm (MLFMA) for simulating electromagnetic-wave propagation in photonic-crystal (PhC)-slab devices is presented. The scheme accelerates the 3-D multiple-scattering technique (MST) for characterizing open PhC-slab devices comprising air holes in multilayered stacks proposed in a recent work by Boscolo and Midrio. This 3D MST truncates open PhC-slab devices by conductor-backed perfectly matched layers, expands total fields in the resulting closed structures in terms of discrete radial modes of the associated closed slab waveguides, and uses scattering tensors to evaluate air-hole interactions. Here, this last step is accelerated using a hybrid MLFMA that leverages low- and high-frequency fast-multipole constructs in conjunction with a mode-trimming feature. The computational complexity of the resulting hybrid MLFMA-MST scales almost linearly in the number of air holes, thereby enabling the analysis of electromagnetically large PhC- slab devices on readily available computer hardware. The scheme is applied to the analysis of a variety of practical PhC-slab devices, including a straight PhC-slab waveguide, a couple of bended PhC-slab waveguides, and a large PhC-slab coupler.
Keywords
electromagnetic wave propagation; electromagnetic wave scattering; light propagation; light scattering; optical waveguide theory; photonic crystals; 3D multiple-scattering technique; PhC-slab coupler; PhC-slab devices; air-hole interactions; discrete radial modes; electromagnetic scattering; electromagnetic-wave propagation; fast-multipole algorithm; fast-multipole analysis; perfectly matched layers; photonic crystal slabs; scattering tensors; straight PhC-slab waveguide; Acceleration; Electromagnetic analysis; Electromagnetic propagation; Electromagnetic scattering; Electromagnetic waveguides; Particle scattering; Perfectly matched layers; Photonic crystals; Slabs; Tensile stress; Electromagnetic scattering; fast-multipole methods; photonic bandgap waveguides; photonic crystals;
fLanguage
English
Journal_Title
Lightwave Technology, Journal of
Publisher
ieee
ISSN
0733-8724
Type
jour
DOI
10.1109/JLT.2007.902771
Filename
4299005
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