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Reseach Article

Photonic Crystal Fiber and Photonic Crystal Waveguide based Demultiplexers for Optical Network

Published on April 2013 by Jyothi Digge, B. U. Rindhe, S. K. Narayankhedkar
International Conference and Workshop on Emerging Trends in Technology 2013
Foundation of Computer Science USA
ICWET2013 - Number 2
April 2013
Authors: Jyothi Digge, B. U. Rindhe, S. K. Narayankhedkar
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Jyothi Digge, B. U. Rindhe, S. K. Narayankhedkar . Photonic Crystal Fiber and Photonic Crystal Waveguide based Demultiplexers for Optical Network. International Conference and Workshop on Emerging Trends in Technology 2013. ICWET2013, 2 (April 2013), 21-27.

@article{
author = { Jyothi Digge, B. U. Rindhe, S. K. Narayankhedkar },
title = { Photonic Crystal Fiber and Photonic Crystal Waveguide based Demultiplexers for Optical Network },
journal = { International Conference and Workshop on Emerging Trends in Technology 2013 },
issue_date = { April 2013 },
volume = { ICWET2013 },
number = { 2 },
month = { April },
year = { 2013 },
issn = 0975-8887,
pages = { 21-27 },
numpages = 7,
url = { /proceedings/icwet2013/number2/11337-1353/ },
publisher = {Foundation of Computer Science (FCS), NY, USA},
address = {New York, USA}
}
%0 Proceeding Article
%1 International Conference and Workshop on Emerging Trends in Technology 2013
%A Jyothi Digge
%A B. U. Rindhe
%A S. K. Narayankhedkar
%T Photonic Crystal Fiber and Photonic Crystal Waveguide based Demultiplexers for Optical Network
%J International Conference and Workshop on Emerging Trends in Technology 2013
%@ 0975-8887
%V ICWET2013
%N 2
%P 21-27
%D 2013
%I International Journal of Computer Applications
Abstract

Novel designs of demultiplexers based on photonic crystal fibers (PCF) s and photonic crystal waveguides (PCW) s are presented here. We have considered two types of PCFs and PCWs, namely Dual concentric core PCF, Multicore PCF, PCW with dielectric rods in air and PCW with air holes in dielectric background. Finite difference time domain method (FDTD) is employed to analyze all these devices at 1550nm. The performance of these devices are investigated in terms of optical efficiency, dispersion, device length and cross talk.

References
  1. Gerd Keiser, Optical Fiber Communication McGraw-Hill International Edition, Ref. ISBNO-07-116468-5.
  2. Meint K. Smit and Cor Vandam . 1996. Phasar- based WDM devices, Principles, Design and Applications,IEEE Journal of selected topics in quantum Electronics Vol. 2, No. 2, (June 1996) 236-249.
  3. Anuj Bhatnagar, Jyothi Digge and Mahesh Prasad Sinha. 2004. variable width Arrayed waveguide Demultiplexer on X- cut Lithium Niobate. in Proceedings of SPIE Vol. 5623 338-345 .
  4. Ping Lu,Changlin Yan and Changlin Yan. 2007. Design and Simulation of a novel arrayed waveguide grating. Optical Engineering 46(6) 063002(June 2007) 1-6.
  5. Yabolonvitch. E. 1987 . Inhibited spontaneous emission in solid-state physics and electronics . Phy letter,58. (June 1987)2059-2062.
  6. J. C. Knight, T. A. Birks, P. St. J. Russell, and D. M. Atkin. 1996. All-silica single-mode optical fiber with photonic crystal cladding. Opt. Lett. 21,(April 1996) 1547-1549.
  7. T. A. Birks, J. C. Knight, and P. St. J. Russell. 1997. Endlessly single-mode photonic crystal fiber. Opt. Lett. 22,(Nov 1997)961-963.
  8. Z. Yusoff, J. H. Lee, W. Belardi, T. M. Monro, P. C. Teh, and D. J. Richardson. (2002) . Raman effects in a highly nonlinear holey fiber: amplification and modulation. Opt. Lett. 27, (2002)424-426.
  9. K. Tajima, J. Zhou, K. Nakajima, and K. Sato. 2004. Ultralow Loss and Long Length Photonic Crystal Fiber,IEEE J. Lightwave. Technology. 22,(Jan 2004) 7-10.
  10. Prather,D. W. Shi, S. Murakowski, J. Schneider, G. J. , Sharkawy, A. Chen, C. Miao, B. (2006). Photonic Crystal Structures and Applications: Perspective, Overview, and Development. IEEE J. Selected Topics in Quantum Electronics. Volume:12Issue:6 (Nov2006)1416-1437.
  11. Noda,S. Yokoyama,M. Imada,M. Chutinan,AandMochizuki. M. (2005). Polarization mode control of two dimensional photonic crystals and devices',IEEE J. of quantum electronics 38,(2005)726-735.
  12. Mekis. A. Chen,J. C. Kurland. I. ,Fan. S. Villeneuve. P. R. and Joanopoulos. J. D. 1996. High transmission through sharp bends in Photonic crystal waveguides. Phy. Rev . letter 77(1996)3787-3790.
  13. S. Haxa,W. Belhadj. AbdeMalekandBouchriha. 2005. Analysis of wavelength demultiplexer based on Photonic crystals In proceedings of IEEE conference Optoelectronics,Vol. 152,No. 4,(August 2005).
  14. T. Fujisawa and M. Koshiba. 2006. An analysis of photonic crystal waveguide grating using coupled mode theory and finite element method. Appl. Opt. lett, 45,(2006) 4114-4121.
  15. Jyothi Digge, S. K. Narayankhedkar. (2010). Design and Analysis of PCF based Arrayed waveguide Grating Demux for optical Network. In the proceedings of IET conference on Next Generation Network . ( Sept 2010) 1-4.
  16. Jyothi Digge, S. K. Narayankhedkar(2010). Design of AWG Demultiplexer based on Photonic crystal. In the proceedings of Photonics 2010 on Photonics and Fiber Optics. IIT Guwahati ,India.
  17. Che-Yun Lin, Harish Subbaraman, Amir Hosseini, Alan X. Wang, Liang Zhu (2012). Silicon nanomembrane based photonic crystal waveguide array for wavelength-tunable true-time-delay lines. Appl. Phys. Lett. (July2012)051101-051103.
  18. P. A. Besse,E. Gini,M. Bachmann,andH. Melchior(1996). New 2x2 and 1x3 multimode interference coupler with free selection of power splitting ratios. IEEE J. Lightwave Technology, Vol 14(Apr 1996),2286-2293.
  19. Phillip St. J. Russel(2006) . Photonic crystal Fibers J. ournal of light wave technology, Vol-24, No 12, (Dec 2006),4729-4749
Index Terms

Computer Science
Information Sciences

Keywords

Dual Concentric Core Multicore Pcf Pcw And Fdtd