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Tytuł artykułu

Defect modes properties in one-dimensional photonic crystals employing a superconducting nanocomposite material

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
In the present work, we investigate theoretically the transmission characteristics of one-dimensional photonic crystals that contain a defect layer of a nanocomposite material in infrared radiation. The theoretical treatment is obtained depending on the fundamentals of the characteristic matrix method. Here, the nanocomposite designed from nanoparticles of a superconducting material is arranged into a dielectric medium. The numerical results clarify the acute effect of the volume fraction and the operating temperature on the effective permittivity of the nanocomposite material. Therefore, the volume fraction, the operating temperature and other parameters such as the permittivity of the dielectric material and the threshold frequency could have a significant effect on the characteristics of the defect modes. Thus, our structure may be very promising in many applications such as narrow band filters and among optoelectronic applications.
Słowa kluczowe
Czasopismo
Rocznik
Strony
53--64
Opis fizyczny
Bibliogr. 35 poz., rys.
Twórcy
autor
  • Physics Department, Faculty of Science, Beni-Suef University, Egypt
  • Physics Department, Faculty of Science, Beni-Suef University, Egypt
autor
  • Physics Department, Faculty of Science, Beni-Suef University, Egypt
Bibliografia
  • [1] JOANNOPOULOS J.D., JOHNSON S.G., WINN J.N., MEADE R.D., Photonic Crystals: Molding the Flow of Light, Princeton University Press, Princeton, NJ, USA, 2008.
  • [2] ELSAYED H.A., EL-NAGGAR S.A., ALY A.H., Two dimensional tunable photonic crystals and n doped semiconductor materials, Materials Chemistry and Physics 160, 2015, pp. 221–226.
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  • [4] ALY A.H., ELSAYED H.A., EL-NAGGAR S.A., Tuning the flow of light in two-dimensional metallic photonic crystals based on Faraday effect, Journal of Modern Optics 64(1), 2017, pp. 74–80.
  • [5] ALY A.H., MOHAMED D., BSCCO/SrTiO3 one dimensional superconducting photonic crystal for many applications, Journal of Superconductivity and Novel Magnetism 28(6), 2015, pp. 1699–1703.
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  • [8] ALY A.H., ELSAYED H.A., Defect mode properties in a one-dimensional photonic crystal, Physica B: Condensed Matter 407(1), 2012, pp. 120–125.
  • [9] ALY A.H., ELSAYED H.A., Tunability of defective one-dimensional photonic crystals based on Faraday effect, Journal of Modern Optics 64(8), 2017, pp. 871–877.
  • [10] ALY A.H., ABDEL GHANY S.E.S., FADLALLAH M.M., SALMAN F.E., KAMAL B.M., Transmission and temperature sensing characteristics of a binary and ternary photonic band gap, Journal of Nanoelectronics and Optoelectronics 10(1), 2015, pp. 9–14.
  • [11] SMITH D.R., DALICHAOUCH R., KROLL N., SCHULTZ S., MCCALL S.L., PLATZMAN P.M., Photonic band structure and defects in one and two dimensions, Journal of the Optical Society of America B 10(2), 1993, pp. 314–321.
  • [12] SHI B., JIANG Z.M., XUN WANG, Defective photonic crystals with greatly enhanced second-harmonic generation, Optics Letters 26(15), 2001, pp. 1194–1196.
  • [13] ALY A.H., AGHAJAMALI A., ELSAYED H.A., MOBARAK M., Analysis of cutoff frequency in a one-dimensional superconductor-metamaterial photonic crystal, Physica C: Superconductivity and its Applications 528, 2016, pp. 5–8.
  • [14] EL-NAGGAR S.A., ELSAYED H.A., ALY A.H., Maximization of photonic bandgaps in two-dimensional superconductor photonic crystals, Journal of Superconductivity and Novel Magnetism 27(7), 2014, pp. 1615–1621.
  • [15] ELSAYED H.A., EL-NAGGAR S.A., ALY A.H., Thermal properties and two-dimensional photonic band gaps, Journal of Modern Optics 61(5), 2014, pp. 385–389.
  • [16] KNIGHT J.C., BROENG J., BIRKS T.A., RUSSELL P.S.J., Photonic band gap guidance in optical fibers, Science 282(5393), 1998, pp. 1476–1478.
  • [17] ALY A.H., SABRA W., ELSAYED H.A., Cutoff frequency in metamaterials photonic crystals within Terahertz frequencies, International Journal of Modern Physics B 31(15), 2017, article ID 1750123.
  • [18] ALY A.H., ELSAYED H.A., HAMDY H.S., The optical transmission characteristics in metallic photonic crystals, Materials Chemistry and Physics 124(1), 2010, pp. 856–860.
  • [19] ALY A.H., SANG-WAN RYU, CHIEN-JANG WU, Electromagnetic wave propagation characteristics in a one-dimensional metallic photonic crystal, Journal of Nonlinear Optical Physics and Materials 17(3), 2008, pp. 255–264.
  • [20] ALY A.H., SANG-WAN RYU, HENG-TUNG HSU, CHIEN-JANG WU, THz transmittance in one-dimensional superconducting nanomaterial-dielectric superlattice, Materials Chemistry and Physics 113(1), 2009, pp. 382–384.
  • [21] ALY A.H., HENG-TUNG HSU, TZONG-JER YANG, CHIEN-JANG WU, CHANG KWON HWANGBO, Extraordinary optical properties of a superconducting periodic multilayer in near-zero-permittivity operation range, Journal of Applied Physics 105(8), 2009, article ID 083917.
  • [22] ALY A.H., EL-NAGGAR S.A., ELSAYED H.A., Tunability of two dimensional n-doped semiconductor photonic crystals based on the Faraday effect, Optics Express 23(11), 2015, pp. 15038–15046.
  • [23] ALY A.H., SABRA W., ELSAYED H.A., Dielectric and superconducting photonic crystals, Journal of Superconductivity and Novel Magnetism 26(3), 2013, pp. 553–560.
  • [24] VETROV S.YA., BIKBAEV R.G., TIMOFEEV I.V., Optical Tamm states at the interface between a photonic crystal and a nanocomposite with resonance dispersion, Journal of Experimental and Theoretical Physics 117(6), 2013, pp. 988–998.
  • [25] VETROV S.YA., AVDEEVA A.YU., TIMOFEEV I.V., Spectral properties of a one-dimensional photonic crystal with a resonant defect nanocomposite layer, Journal of Experimental and Theoretical Physics 113(5), 2011, pp. 755–761.
  • [26] LABBANI A., SAOUDI R., BENGHALIA A., Photonic band gaps in one- and two-dimensional photonic crystals based on a nanocomposite of ZnS and glass, Journal of Optics A: Pure and Applied Optics 11(8), 2009, article ID 085103.
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  • [28] MOISEEV S.G., Thin-film polarizer made of heterogeneous medium with uniformly oriented silver nanoparticles, Applied Physics A: Materials Science and Processing 103(3), 2011, pp. 775–777.
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  • [30] BORN M., WOLF E., Principles of Optics, Cambridge, London, 1999.
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  • [32] BUCKEL W., KLEINER R., Superconductivity: Fundamentals and Applications, VCH, Weinheim, 2004.
  • [33] ALY A.H., MEHANEY A., Enhancement of phononic band gaps in ternary/binary structure, Physica B: Condensed Matter 407(21), 2012, pp. 4262–4268.
  • [34] ALY A.H., MEHANEY A., EISSA M.F., Ionizing particle detection based on phononic crystals, Journal of Applied Physics 118(6), 2015, article ID 064502.
  • [35] ALY A.H., MEHANEY A., Low band gap frequencies and multiplexing properties in 1D and 2D mass spring structures, Chinese Physics B 25(11), 2016, article ID 114301.
Uwagi
Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2018).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-350e2316-25b3-4e17-bfd2-4fdb68439356
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