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Interferential polychromatic filters based on the quasi-periodic one-dimensional generalized multilayer Thue - Morse structures

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Języki publikacji
EN
Abstrakty
EN
In this paper, a new type of optical filter using photonic band gap materials has been proposed. The optical filter was obtained by a combination of periodic H(LH)J and generalized Thue - Morse (GTM) quasi-periodic one-dimensional multilayer. We show that the whole structure H(LH)J[TM]PH(LH)J, where P is the repetition number of the GTM stack, has an interesting application as a polychromatic filter. However, the effect of the repetition number for producing an improved polychromatic filter is presented. So, switches like (on-on-off-off-on-on-…) have been found.
Czasopismo
Rocznik
Strony
489--498
Opis fizyczny
bibliogr. 16 poz.,
Twórcy
autor
autor
  • Laboratoire de Photovoltaique et Matériaux Semi-conducteurs (LPMS), Ecole Nationale d'Ingénieurs de Tunis BP 37 le Belvédere 1002 Tunis, Tunisie
Bibliografia
  • [1] YABLONOVITCH E., Inhibited spontaneous emission in solid-state physics and electronics, Physical Review Letters 58(20), 1987, pp. 2059–2062.
  • [2] JUGESSUR A., POTTIER P., DE LA RUE R., Engineering the filter response of photonic crystal microcavity filters, Optics Express 12(7), 2004, pp. 1304–1312.
  • [3] WEISS S.M., HAURYLAU M., FAUCHET P.M., Tunable photonic bandgap structures for optical interconnects, Optical Materials 27(5), 2005, pp. 740–744.
  • [4] JOANNOPOULOS J.D., MEADE R.D., WINN J.N., Photonic Crystals: Molding the Flow of Light, Princeton University Press, Princeton, NJ, 1995.
  • [5] SOUKOULIS C.M., Photonic Crystals and Light Localization in the 21st Century, Kluwer, Dordrecht, 2001.
  • [6] MACIA E., Exploiting quasiperiodic order in design of optical devices, Physical Review B 63(20), 2001, p. 205421.
  • [7] MACIA E., Optical engineering with Fibonacci dielectric multilayers, Applied Physics Letters 73(23), 1998, pp. 3330–3332.
  • [8] CHIGRIN D.N., LAVRINENKO A.V., YAROTSKY D.A., GAPONENKO S.V., All-dielectric one-dimensional periodic structures for total omnidirectional reflection and partial spontaneous emission control, Journal of Lightwave Technology 17(11), 1999, p. 2018.
  • [9] FORESI J.S., FERRERA J., THOEN E.R., STEINMEYER G., FAN S., JOANNOPOULOS J.D., KIMERLING L.C., SMITH H.I., IPPEN E.P., VILLENEUVE P.R., Photonic-bandgap microcavities in optical waveguides,Nature 390(6656), 1997, pp. 143–145.
  • [10] KANZARI M., BOUZIDI A., REZIG B., Interferential polychromatic filters, The European Physical Journal B 36(4), 2003, pp. 431–443.
  • [11] KANZARI M., REZIG B., Filtres interférentiels à partir des systèmes multicouches diélectriques unidimentionnels perturbés, Phys. Chem. News 11, 2003, pp. 66–76.
  • [12] NIAN-HUA LIU, Propagation of light waves in Thue–Morse dielectric multilayers, Physical Review B 55(6), 1997, pp. 3543–3547.
  • [13] KOLAR M., ALI M.K., NORI F., Generalized Thue–Morse chains and their physical properties, Physical Review B 43, 1991, p. 1034.
  • [14] AISSAOUI M., ZAGHDOUDI J., KANZARI M., REZIG B., Optical properties of the quasi-periodic one-dimensional generalized multilayer Fibonacci structure, Progress in Electromagnetics Research, PIER 59, 2006, pp. 69–83.
  • [15] WANG X., GRIMM U., SCHREIBER M., Trace and antitrace maps for aperiodic sequences: Extensions and applications, Physical Review B 62(21), 2000, pp. 14020–14031.
  • [16] WANG XIAO-GUANG, PAN SHAO-HUA, YANG GUO-ZHEN, Antitrace maps and light transmission coefficients for generalized Fibonacci multilayers, Chinese Physics Letters 18(1), 2001, p. 80.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BPW7-0011-0045
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