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arXiv · 0706.2279

Efficient analysis and design of low-loss whispering-gallery-mode coupled resonator optical waveguide bends

Abstract

Waveguides composed of electromagnetically-coupled optical microcavities (coupled resonator optical waveguides or CROWs) can be used for light guiding, slowing and storage. In this paper, we present a two-dimensional analysis of finite-size straight and curved CROW sections based on a rigorous Muller boundary integral equations method. We study mechanisms of the coupling of whispering gallery (WG) modes and guiding light around bends in CROWs composed of both identical and size-mismatched microdisk resonators. Our accurate analysis reveals differences in WG modes coupling in the vicinity of bends in CROWs composed of optically-large and wavelength-scale microcavities. We propose and discuss possible ways to design low-loss CROW bends and to reduce bend losses. These include selecting specific bend angles depending on the azimuthal order of the WG mode and tuning the radius of the microdisk positioned at the CROW bend.

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Svetlana V. Pishko, Phillip Sewell, Trevor M. Benson, Svetlana V. Boriskina. 2007-06-15. Efficient analysis and design of low-loss whispering-gallery-mode coupled resonator optical waveguide bends. https://doi.org/10.1109/jlt.2007.903295

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