DocumentCode :
47090
Title :
Design of Arbitrary Modal Electric Field in Cylindrical Waveguides
Author :
Boucouvalas, A.C. ; Thraskias, Christos A.
Author_Institution :
Dept. of Inf. & Telecommun., Univ. of Peloponnese, Tripoli, Greece
Volume :
50
Issue :
10
fYear :
2014
fDate :
Oct. 2014
Firstpage :
840
Lastpage :
847
Abstract :
In this paper, we examine for the first time how to design arbitrary shape modal fields within complex refractive index circular waveguides. In order to achieve this flexibility in field shape, we use complex refractive index profile waveguides, where we determine the required refractive index profile on both real and imaginary refractive index. We develop a technique for calculating directly and accurately the refractive index profiles of cylindrical waveguides from knowledge of the desired modal electric field. The method we use to solve this inverse problem is via modeling the waveguide transversely as a transmission line. We demonstrate this algorithm with a number of example reconstructions of different arbitrary modal electric fields. The refractive index profiles generated supporting the required modal electric fields are complex. We reconstruct complex refractive index profiles which support unusual electric field distributions. We expect this technique to be useful in designing special fibers for mode matching between dissimilar waveguides, in designing sensing optical fibers, in mode division multiplexing, in gain flattening optical fiber amplifiers, and also for high power optical fibers.
Keywords :
inverse problems; optical fibre communication; optical waveguides; refractive index; wavelength division multiplexing; arbitrary modal electric field; arbitrary shape modal fields; complex refractive index circular waveguides; cylindrical waveguides; electric field distributions; gain flattening optical fiber amplifiers; high power optical fibers; imaginary refractive index; inverse problem; mode division multiplexing; real refractive index; sensing optical fibers; transmission line; Electric fields; Image reconstruction; Mathematical model; Optical fibers; Propagation constant; Refractive index; Optical design techniques; optical fibers; optical waveguides;
fLanguage :
English
Journal_Title :
Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
0018-9197
Type :
jour
DOI :
10.1109/JQE.2014.2352315
Filename :
6884765
Link To Document :
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