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Photonic band gap in negative ternary refractive indices of two-dimensional photonic crystal

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
In this paper, we study propagation of electromagnetic wave in negative ternary refractive indices of two-dimensional photonic crystals. We consider two structures with two concentric cylindrical rod and shell in which one of them has negative refractive indices, in positive dielectric background. It is shown that by increasing the diameter of the rod in both structures, we can obtain more and wider band gaps in comparison with the structures in which there is no negative refractive index materials. This increase is more considerable in the first structure, in which the rod has a negative refractive index, in comparison with the second one, where the rod has a positive refractive index.
Czasopismo
Rocznik
Strony
637--648
Opis fizyczny
Bibliogr. 26 poz., rys., wykr.
Twórcy
autor
  • Department of Physics, Payame Noor University, Iran
  • Department of Physics, Payame Noor University, Iran
autor
  • Department of Physics, Payame Noor University, Iran
Bibliografia
  • [1] SALEH B.E.A., TEICH M.C., Fundamental of Photonics, 2nd Ed., Wiley, New York 2007.
  • [2] SUKHOIVANOV A., GURYEV V., Photonic Crystals Physics and Practical Modelling, Springer Series in Optical Science, New York, 2009.
  • [3] JOANNOPOULOS J.D., MEADE R.D., WINN J.N., Photonic Crystals, Molding the Flow of Light, 2nd Ed., Princeton University Press, Princeton, 1995.
  • [4] MARUDUDIN A.A., MCGURN A.R., Photonic band structure of a truncated, two-dimensional periodic dielectric medium, Journal of the Optical Society of America B 10(2), 1993, pp. 307–313.
  • [5] MEADE R.D., RAPPE A.M., BROMMER K.D., JOANNOPOULOS J.D., Nature of the photonic band gap: some insights from a field analysis, Journal of the Optical Society of America B 10(2), 1993, pp. 328–332.
  • [6] RAMAKRISHNA S.A., Physics of negative refractive index materials, Reports on Progress in Physics 68(2), 2005, pp. 449–521.
  • [7] MARKOS P., SOUKOULIS C.M., Wave Propagation: From Electrons to Photonic Crystals and Left-Handed Materials, Princeton University Press, Canada, 2008.
  • [8] SKOROBOGATIY M., YANG J., Fundamentals of Photonic Crystal Guiding, 1st Ed., Cambridge University Press, 2009.
  • [9] SMITH D.R., PADILLA W J., VIER D.C., NEMAT-NASSER S.C., SCHULTZ S., Composite medium with simultaneously negative permeability and permittivity, Physical Review Letters 84(18), 2000, pp. 4184–4187.
  • [10] VESELAGO V.G., The electrodynamics of substance with simultaneously negative values of ε and μ, Soviet Physics Uspekhi 10(4), 1968, pp. 509–514.
  • [11] MARQUÉS R., MARTÍN F., SOROLLA M., Metamaterials with Negative Parameters: Theory, Design and Microwave Applications, Wiley Series in Microwave and Optical Engineering, 2007.
  • [12] XIN-HUA DENG, JIANG-TAO LIU, JIE-HUI HUANG, LINER ZOU, NIAN-HUA LIU, Omnidirectional bandgaps in Fibonacci quasicrystals containing single-negative materials, Journal of Physics: Condensed Matter 22(5), 2010, article 055403.
  • [13] XU JING-PING, HE LI, QIAO WEN-TAO, ZHANG LI-WEI, Electromagnetic tunnelling properties of sandwich structure containing single negative material, Acta Physica Sinica 59(11), 2010, pp. 7863–7868.
  • [14] LIU SHAO-BIN, ZHANG HAI-FENG, KONG XIANG, Analsys of the properties of tunable prohibited band gaps for two-dimensional unmagnetized plasma photonic crystals under TM mode, Acta Physica Sinica 60(5), 2011, article 055209.
  • [15] ENGHETA N., ZIOLKOWSKI R.W., Metamaterials Physics and Engineering Exploration, John Wiley and Sons, USA, 2006.
  • [16] GHARAATI A., ZARE Z., Photonic band structures and enhancement of omnidirectional reflection bands by using a ternary 1D photonic crystal including left-handed materials, Progress in Electromagnetics Research M 20, 2011, pp. 81–94.
  • [17] ZARE Z., GHARAATI A., Investigation of band gap width in ternary 1D photonic crystal with left--handed layer, Acta Physica Polonica A 125(1), 2014, pp. 36–38.
  • [18] VESELAGO V., BRAGINSKY L., SHKLOVER V., HAFNER C., Negative refractive index materials, Journal of Computational and Theoretical Nanoscience 3(2), 2006, pp. 189–218.
  • [19] CHIYAN LUO, JOHNSON S.G., JOANNOPOULOS J.D., PENDRY J.B., All-angle negative refraction without negative effective index, Physical Review B 65, 2002, article 201104(R).
  • [20] ZIOLKOWSKI R.W., HEYMAN E., Wave propagation in media having negative permittivity and permeability, Physical Review E 64, 2001, article 056625.
  • [21] HAI-FENG ZHANG, SHAO-BIN LIU, XIANG-KUN KONG, Investigation of the unusual surface plasmon modes and switching band gap in three-dimensional photonic crystals with pyrochlore lattices composed of epsilon-negative materials, Journal of the Optical Society of America B 31(6), 2014, pp. A31–A39.
  • [22] HAI-FENG ZHANG, SHAO-BIN LIU, The anisotropic photonic band gaps in three-dimensional photonic crystals with high-symmetry lattices composed of metamaterials and uniaxial materials, Optical Materials, 36(5), 2014, pp. 903–910.
  • [23] ZHANG H.-F., LIU S.-B., LI H.-M., The wavelength division multiplexer realized in three-dimensional unusual surface-plasmon-induced photonic crystals composed of the epsilon-negative materials shells, Progress in Electromagnetics Research 144, 2014, pp. 151–169.
  • [24] HAI-FENG ZHANG, SHAO-BIN LIU, XIANG-KUN KONG, Investigating the dispersive properties of the three-dimensional photonic crystals with face-centered-cubic lattices containing epsilon-negative materials, Applied Physics B 112(4), 2013, pp. 553–563.
  • [25] LOURTIOZ J.-M., BENISTY H., BERGER V., GERARD J.-M., MAYSTRE D., TCHELNOKOV A., Photonic Crystals – Towards Nanoscale Photonic Devices, Springer, Heidelberg, 2005.
  • [26] BELL P.M., PENDRY J.B., MORENO L.M., WARD A.J., A program for calculating photonic band structures and transmission coefficients of complex structures, Computer Physics Communications 85(2), 1995, pp. 306–322.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-189195db-e774-4312-aa78-8c8318c4aade
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