Paper
7 July 2005 The Fast Fourier Factorization method applied to the study of arbitrary cross section microstructured optical fibers
Philippe Boyer, Gilles Renversez, Evgueni Popov, Michel Neviere
Author Affiliations +
Proceedings Volume 5840, Photonic Materials, Devices, and Applications; (2005) https://doi.org/10.1117/12.608325
Event: Microtechnologies for the New Millennium 2005, 2005, Sevilla, Spain
Abstract
A new differential theory is developed for studying mode propagation in microstructured optical fibers (MOFs) with arbitrary cross section. The present method called Fast Fourier Factorization initially applied on gratings has been generalized to anisotropic and/or inhomogeneous media described in cylindrical coordinates. Thus, a new formulation of Maxwell equations are written in a truncated Fourier space taking account to the development truncations and discontinuities of opto-geometrical quantities. In the case of isotropic and homogeneous medium, the achieved first order differential set may be resolved with suitable algorithm which changes the boundary-value problem into an initial-value problem. To avoid numerical contaminations, the S-propagation algorithm is used. The numerical implementation of the FFF method is validated by comparison with the results computed with the Multipole Method for a six hole MOF. Then, new results for a MOF profile that cannot be directly studied with the Multipole Method are given.
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Philippe Boyer, Gilles Renversez, Evgueni Popov, and Michel Neviere "The Fast Fourier Factorization method applied to the study of arbitrary cross section microstructured optical fibers", Proc. SPIE 5840, Photonic Materials, Devices, and Applications, (7 July 2005); https://doi.org/10.1117/12.608325
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KEYWORDS
Micro optical fluidics

Modulation

Maxwell's equations

Structured optical fibers

Contamination

Matrices

Dielectrics

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