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Modeling and design of arrayed waveguide gratings | IEEE Journals & Magazine | IEEE Xplore

Modeling and design of arrayed waveguide gratings


Abstract:

The purpose of this paper is twofold. First, a simple but comprehensive and powerful arrayed-waveguide grating (AWG) field model is presented which, based on Fourier opti...Show More

Abstract:

The purpose of this paper is twofold. First, a simple but comprehensive and powerful arrayed-waveguide grating (AWG) field model is presented which, based on Fourier optics, borrows some principles of that developed by Takeouchi and coworkers [see, Opt. Express, vol. 6, p. 124, 2000] for the analysis of reflective-type AWGs for optical signal processing, but at the same time adds more features, such as the calculation of device losses and the refinement of the mathematical model to obtain a simple expression for the output field for any input-output waveguide configuration where the meaning of the different high-level parameters of the AWG becomes very clear to the reader. Second, we elaborate on the model developed to present an useful design procedure of the AWG based on two steps illustrated by design flowcharts.
Published in: Journal of Lightwave Technology ( Volume: 20, Issue: 4, April 2002)
Page(s): 661 - 674
Date of Publication: 07 August 2002

ISSN Information:


I. Introduction

The arrayed-waveguide grating (AWG), also known as Dragone-Smit router or PHASAR, is an extremely versatile device that features and combines simultaneously unique periodic spatial and frequency properties and the possibility of integration on a chip [2], [3].

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References

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