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- W2023738960 abstract "In this letter, a numerical analysis of light propagation in photonic crystal fibers infiltrated with liquid crystals is presented. Our simulations, based on the finite difference beam propagation method, revealed the importance of space discretization in numerical algorithms applied. At the conclusion, a triangular discrete mesh is shown as better numerical representation when compared to the standard square grid used for modeling photonic crystal fibers with hexagonal symmetry. Full Text: PDF References: P. Russel, Photonic Crystal Fibers, Science 299, 358 (2003). [CrossRef] I.C. Khoo, S.T. Wu, and Optics of Crystals, Singapore, World Scientific Publ., (1997). T.T. Larsen, A. Bjarklev, D.S. Hermann, J. Broeng, Optical devices based on liquid crystal photonic bandgap fibres, Opt. Expr. 11, 2589 (2003). [CrossRef] T.R. Wolinski, K. Szaniawska, K. Bodnarczuk, P. Lesiak, A.W. Domanski, R. Dąbrowski, E. Nowinowski-Kruszelnicki, J. Wojcik, Propagation properties of photonic crystal fibers filled with nematic liquid crystals, Opto-Electron. Rev., 13(2), 177 (2005). M.M. Tefelska, M.S. Chychlowski, T.R. Wolinski, R. Dąbrowski, J. Wojcik, Tunable attenuation in photonic liquid crystal fibers, Phot. Lett. of Poland 1(2), 97 (2009). A. Czapla, W.J. Bock, T.R. Wolinski, High-Efficiency Thermal Tuning of a Long-Period Fiber Grating Using a Crystal Layer, Phot. Lett. of Poland 1(2), 100 (2009). T.R. Wolinski, K. Szaniawska, S. Ertman, P. Lesiak, A.W. Domanski, R. Dabrowski, E. Nowinowski-Kruszelnicki, J. Wojcik, Influence of temperature and electrical fields on propagation properties of photonic liquid-crystal fibres, Meas. Science Techn. 17, 985 (2006). [CrossRef] K.A. Brzdąkiewicz, U.A. Laudyn, M.A. Karpierz, T.R. Wolinski, J. Wojcik, Linear and nonlinear properties of photonic crystal fibers filled with nematic liquid crystals, Opto-Electron. Rev. 14, 287 (2006). [CrossRef] K.A. Rutkowska, U.A. Laudyn, R.T. Rutkowski, M.A. Karpierz, T.R. Wolinski, J. Wojcik, Nonlinear light propagation in photonic crystal fibers filled with nematic liquid crystals, Proc. SPIE 6582, 658215 (2007). [CrossRef] M. Kwaśny, U.A. Laudyn, P. Jung, M.A. Karpierz, Possibility of discrete beam propagation in chiral nematic liquid crystals, Phot. Lett. of Poland 1(4), 160 (2009). I.H. Molitson, Interspecimen Comparison of the Refractive Index of Fused Silica, J. Opt. Soc. Am. 55, 1205 (1965). [CrossRef] J. Schirmer, P. Kohns, T. Schmidt-Kaler, A. Muravski, S. Yakovenko, V. Bezborodov, R. Dabrowski, P. Adomenas, Birefringence and Refractive Indices Dispersion of Different Crystalline Structures, Mol. Cryst. Liq. Cryst. 307, 1 (1997). [CrossRef] A.R. Mitchell, D.F. Griffiths, The Finite Difference Method in Partial Differential Equations, (London, Wiley 1980). S. Ertman, T.R. Wolinski, A. Czapla, K. Nowecka, E. Nowinowski-Kruszelnicki, J. Wojcik, Liquid crystal molecular orientation in photonic liquid crystal fibers with photopolymer layers, Proc. SPIE 6587, 658706 (2007). [CrossRef]" @default.
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- W2023738960 title "Modeling of light propagation in photonic liquid crystal fibers" @default.
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