PhotonIcs and Electromagnetics Research Symposium,
also known as Progress In Electromagnetics Research Symposium
PIERS Proceedings
Published: 2015-07-09
The Effect of Iron Nano-inclusions in Multilayered Integrated Optical Waveguides
By
Proceedings of 2015 Photonics & Electromagnetics Research Symposium, Prague, July 6 - 9,Page(s)2665-2669
Abstract
Nonorthogonal coupled mode theory is used to analyze the impact of iron nano- inclusion in the TE mode coupling between two integrated optical waveguides structures. In the first case, the nano-inclusion fractions are included in an identical manner in both waveguides, and in the second the nano-inclusion are added only in one of the waveguides. The structures beating lengths strongly depends on the inclusion filling factor and the thickness of the cladding layer. They reduce with increasing inclusion-filling factors, reaching a 70% and a 56% reduction with respect to the lossless case, for the identical and non-identical cases, respectively. Cladding thickness increases the beating length reducing the structure total power as filling factor increases, for the identical case, and depicting a inflection point for the non-identical case where the total power increases.
Citation
Isabelle G. De Moraes, Maria Thereza M. R. Giraldi, Maria Aparecida G. Martinez, and Anderson Oliveira Silva, "The Effect of Iron Nano-inclusions in Multilayered Integrated Optical Waveguides," Proceedings of 2015 Photonics & Electromagnetics Research Symposium, Prague, July 6 - 9,Page(s)2665-2669
References

1. Dai, Daoxin, Jared Bauters, and John E Bowers, "Passive technologies for future large-scale photonic integrated circuits on silicon: polarization handling, light non-reciprocity and loss reduction," Light: Science & Applications, Vol. 1, 1-12, March 2012.
doi:10.1038/lsa.2012.1        Google Scholar

2. Sihvola, Ari, "Homogenization of a dielectric mixture with anisotropic spheres in anisotropic background," Electromagnetics, Vol. 17, No. 3, 269-286, 1997.
doi:10.1080/02726349708908536        Google Scholar

3. Chuang, Shun-Lien, "A coupled mode formulation by reciprocity and a variational principle," Journal of Lightwave Technology, Vol. 5, 5-15, 1987.
doi:10.1109/jlt.1987.1075409        Google Scholar

4. Hardy, A. and W. Streifer, "Coupled mode theory of parallel waveguides," Journal of Lightwave Technology, Vol. 3, 1135-1146, 1985.
doi:10.1109/jlt.1985.1074291        Google Scholar

5. Shirato, Yuya, Yuya Shoji, and Tetsuya Mizumoto, "High Isolation in Silicon Waveguide Optical Isolator Employing Nonreciprocal Phase Shift," Optical Fiber Communication Conference/National Fiber Optic Engineers Conference 2013, United States, 2013.
doi:10.1364/ofc.2013.otu2c.5        Google Scholar

6. Hammer, J. M., G. A. Evans, G. Ozgur, and J. K. Butler, "Isolators, polarizers, and other optical waveguide devices using a resonant-layer effect," Journal of Lightwave Technology, Vol. 22, No. 7, 1754-1763, 2004.
doi:10.1109/jlt.2004.831088        Google Scholar

7. Sihvola, Ari, "Homogenization of a dielectric mixture with anisotropic spheres in anisotropic background," Electromagnetics, Vol. 17, No. 3, 269-286, 1997.
doi:10.1080/02726349708908536        Google Scholar

8. Krinchik, G. S. and V. A. Artemjev, "Magneto-optic properties of nickel, iron, and cobalt," Journal of Applied Physics, Vol. 39, No. 2, 1276-1278, 1968.
doi:10.1063/1.1656263        Google Scholar

9. Yariv, A., "Coupled-mode theory for guided-wave optics," IEEE Journal of Quantum Electronics, Vol. 9, No. 9, 919-933, 1973.
doi:10.1109/jqe.1973.1077767        Google Scholar

10. Marcuse, D., Theory of Optical Waveguides, Academic Press, New York, 1974.        Google Scholar