References
[1]. Akowuah. E.K.; Ademgil. H.; Haxha. S. (2012). Design and analysis of Photonic Crystal Fibers (PCFs) for broadband applications. IEEE 4th International Conference on Adaptive Science & Technology (ICAST), (pp.114-120). IEEE.
[2]. Arif, M. F. H., Asaduzzaman, S., Ahmed, K., & Morshed, M. (2016, May). High sensitive PCF based chemical sensor for ethanol detection. In Informatics, Electronics and Vision (ICIEV), 2016 5th International Conference on (pp. 6-9). IEEE.
[3]. Chen, L., Zhang, W., Zhang, Z., Liu, Y., Sieg, J., Zhang, L., ...& Yan, T. (2014). Design for a single-polarization photonic crystal fiber wavelength splitter based on hybrid-surface plasmon resonance. IEEE Photonics Journal, 6(4), 1-9.
[4]. Hossain, M. M., & Maniruzzaman, M. (2014, April). Analysis of dispersion and confinement loss in photonic crystal fiber. In Electrical Engineering and Information & Communication Technology(ICEEICT) , 2014 International Conference on (pp. 1-4). IEEE.
[5]. Jensen, J. B., Riishede, J., Broengx, J., Lægsgaard, J., Larsen, T. T., Sorensen, T., ...& Bjarklev, A. (2003, October). Photonic crystal fibers: Fundamental properties and applications within sensors. In Sensors, 2003. Proceedings of IEEE (Vol. 1, pp. 269-278). IEEE.
[6]. Joannopoulos, J. D., Johnson, S. G., Winn, J. N., & Meade, R. D. (2011). Photonic Crystals: Molding the Flow of Light. Princeton University Press.
[7]. Joshi, A., Shrivastava, S. M., Sahu, V., Anshu. (2017a). Modeling of Hexagonal and Octagonal Photonic Crystal Fiber. i-manager's Journal on Electronics Engineering. 7 (4), 34-40.
[8]. Joshi, A., Shrivastava, S. M., Sahu, V., & Anshu. (2017b). Simulation of various structures of Photonic Crystal Fibers. Research Challenges in Science, Technology and Management for National Development, BIT-CON.
[9]. Kumar, P., Kumari, R., Parida, S. K., & Meher, A. K. (2015). Multicore ethanol doped PCF with anamolous dispersion behavior. 2nd International Conference on Electronics and Communication, (pp.1071-1074).
[10]. Liang, H., Chen, H., & Li, J. (2015). Characteristics analysis of hybrid photonic crystal fiber with hexagonal structure. Optik-International Journal for Light and Electron Optics, 126(20), 2335-2337.
[11]. Liang, J., Yun, M., Kong, W., Sun, X., Zhang, W., & Xi, S. (2011). Highly birefringent photonic crystal fibers with flattened dispersion and low effective mode area. Optik- International Journal for Light and Electron Optics, 122(23), 2151-2154.
[12]. Musin, R. R., & Zheltikov, A. M. (2008). Designing dispersion-compensating photonic-crystal fibers using a genetic algorithm. Optics Communications, 281(4), 567- 572.
[13]. Razzak, S. A., & Namihira, Y. (2008). Proposal for highly nonlinear dispersion-flattened octagonal photonic crystal fibers. IEEE Photonics Technology Letters, 20(4), 249-251.
[14]. Razzak, S. A., Khan, M. A. G., Begum, F., & Kaijage, S. (2007). Guiding properties of a decagonal photonic crystal fiber. Journal of Microwaves, Optoelectronics and Electromagnetic Applications (JMOe), 6(1), 44-49.