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2011-12-20
Tunable All Optical Switch Implemented in a Liquid Crystal Filled Dual-Core Photonic Crystal Fiber
By
Progress In Electromagnetics Research M, Vol. 22, 179-189, 2012
Abstract
We propose an all optical switch in a dual-core photonic crystal fiber (PCF) that has the core region consisting of soft glass and has nematic liquid crystal filled holes in the cladding region. Light waves are guided in this PCF by total internal reflection (TIR) due to the refractive index contrast between soft glass and liquid crystal (LC). Its wavelength dependent coupling, birefringence and dispersion are calculated and later use these parameters to evaluate the switching characteristics of short pulses propagating through this optical waveguide. The switch demonstrates tunability with external perturbation such as applying external heat source or electric field. Refractive index sensitivity of LC with these perturbation as well as polarization of the light signal determines the coupling, birefringence and dispersion properties of the overall waveguide and its switching characteristics.
Citation
Kaisar R. Khan, Serge Bidnyk, and Trevor J. Hall, "Tunable All Optical Switch Implemented in a Liquid Crystal Filled Dual-Core Photonic Crystal Fiber," Progress In Electromagnetics Research M, Vol. 22, 179-189, 2012.
doi:10.2528/PIERM11102810
References

1. Bjarkiev, A., J. Broeng, and A. S. Bjarkiev, Photonic Crystal Fibers, Kluwer Accedemic Publishers, 2003.

2. Knight, J. C., "Photonic crystal fibres," Nature, Vol. 424, 847-851, 2003.
doi:10.1038/nature01940

3. Knight, J. C., T. A. Birks, P. S. J. Russell, and D. M. Atkin, "All-silica single-mode optical fiber with photonic crystal cladding," Optics Lett., Vol. 21, No. 19, 1547, 1996.

4. Gander, M. J., R. McBride, J. Jones, D. Mogilevtsev, T. A. Birks, J. C. Knight, and P. S. J. Russell, "Experimental measurement of group velocity dispersion in photonic crystal fibre," Electronics Letters, Vol. 35, 63-64, 1999.
doi:10.1049/el:19990055

5. Leong, J., P. Petropoulos, J. Price, H. Ebendorff-Heidepriem, S. Asimakis, R. Moore, K. Frampton, V. Finazzi, X. Feng, T. Monro, and D. Rich, "High-nonlinearity dispersion-shifted lead-silicate holey fibers for effcient 1-μm pumped supercontinuum generation," Journal of Lightwave Technology, Vol. 24, No. 11, 183-190, 2006.
doi:10.1109/JLT.2005.861114

6. Cucinotta, A., F. Poli, S. Selleri, L. Vincetti, and M. Zoboli, "Ampliffication properties of Er3+-Doped photonic crystal fibers," Journal of Lightwave Technology, Vol. 21, No. 3, 782-790, 2003.
doi:10.1109/JLT.2003.809576

7. Weirich, J., J. L½gsgaard, L. Scolari1, L. Wei, T. T. Alkeskjold, and A. Bjarklev, "Biased liquid crystal infiltrated photonic bandgap fiber," Optics Express, Vol. 17, No. 6, 4442-4453, 2009.
doi:10.1364/OE.17.004442

8. Saito, K., N. J. Florous, S. K. Varshney, and M. Koshiba, "Tunable photonic crystal fiber couplers with a thermo-responsive liquid crystal resonator," Journal of Lightwave Technology, Vol. 26, No. 6, 663-669, 2008.
doi:10.1109/JLT.2007.915276

9. Hsiao, V. and C.-Y. Ko, "Light-controllable photoresponsive liquid-crystal photonic crystal fiber," Optics Express, Vol. 16, No. 17, 12670-12676, 2008.
doi:10.1364/OE.16.012670

10. Larsen, T. T., A. Bjarklev, D. S. Hermann, and J. Broeng, "Optical devices based on liquid crystal photonic bandgap fibres," Optics Express, Vol. 11, No. 20, 2589-2596, 2003.
doi:10.1364/OE.11.002589

11. Saitoh, K., Y. Sato, and M. Koshiba, "Coupling characteristics of dual-core photonic crystal fiber couplers," Optics Express, Vol. 11, 3188-3195, 2003.
doi:10.1364/OE.11.003188

12. Khan, K. R. and T. X. Wu, "Short pulse propagation in wavelength selective index guided photonics crystal fiber coupler," IEEE Journal of Selected Topics in Quantum Electronics, Vol. 14, No. 3, 752-757, 2008.
doi:10.1109/JSTQE.2008.923161

13. Khan, K. R., T. X. Wu, D. N. Christodoulides, and G. I. Stegeman, "Soliton switching and multifrequency generation in nonlinear photonic crystal fiber," Optics Express, Vol. 16, No. 13, 9417-9428, 2008.
doi:10.1364/OE.16.009417

14. Gallagher, D. F. G. and T. P. Felici, "Eigenmode expansion methods for simulation of optical propagation in photonics-Pros and Cons," Proc. SPIE, Vol. 4987, 69-82, 2003.
doi:10.1117/12.473173

15. Hameed, M., S. A Obayya, K. Al-Begain, M. Abo El Maaty, and A. Nasr, "Modal properties of a novel index guiding nematic liquid crystal photonic crystal fiber," Journal of Light Wave Technology, Vol. 27, No. 21, 4754-4762, 2009.
doi:10.1109/JLT.2009.2026489

16. Hameed, M. F., S. A. Obayya, K. Al-Begain, A. M. Nasr, and M. I. Abo El Maaty, "Coupling characteristics of a glass nematic liquid crystal photonic crystal fibre coupler," IET Optoelectronics, Vol. 3, No. 6, 264-273, Dec. 2009.
doi:10.1049/iet-opt.2009.0033

17. Hameed, M. F., S. A. Obayya, and R. J. Wiltshire, "Multiplexer-demultiplexer based on nematic liquid crystal photonic crystal fiber coupler," J. Opt. Quantum Electron., Vol. 41, No. 4, 315-326, Mar. 2009.
doi:10.1007/s11082-009-9334-x

18. Hameed, M. F. and S. A. Obayya, "Polarization splitter based on soft glass nematic liquid crystal photonic crystal fiber," IEEE Photonics Journal, Vol. 1, No. 6, 265-276, Dec. 2009.
doi:10.1109/JPHOT.2009.2037977

19. Jin, J., The Finite Element Method in Electromagnetics, Wiley & Sons, 2002.

20., Manufacturer data sheet of SF6 soft glass, Schott North America,Inc..

21. Leong, J., "Fabrication and applications of lead-silicate glass holey fiber for 1-1.5microns: Nonlinearity and dispersion trade offs,", Ph.D. Thesis, University of Southampton, Faculty of Engineering, Science and mathematics optoelectronics research centre 2007.

22. Li, J. and S. T.Wu, "Extended Cauchy equations for the refractive indices of liquid crystals," J. Appl. Phys., Vol. 95, 896, 2004.

23. Li, J., S. Gauza, and S. T. Wu, "Temperature effect on liquid crystal refractive indices," J. Appl. Phys., Vol. 96, No. 19, 2004.

24. Khan, K. and T. Hall, "Tunable liquid crystal filled photonic crystal fiber coupler," Proceeding of SPIE Photonics Europe, 2010.

25. Agrawal, G. P., Nonlinear Fiber Optics, 3rd edition, Academic Press, 2001.

26. Coen, S., A. H. L. Chau, R. Leohardt, J. D. Harvey, J. C. Knight, W. J. Wadsworth, and P. S. J. Russell, "Supercontinuum generation by stimulated Raman scattering and parametric four-wave mixing in phototonic crystal fibers," J. Opt. Soc. Am. B, Vol. 19, 753-764, 2002.
doi:10.1364/JOSAB.19.000753