• DocumentCode
    1534661
  • Title

    Analysis of finite 2D photonic crystals of columns and lightwave devices using the scattering matrix method

  • Author

    Yonekura, Jun ; Ikeda, Mitsutaka ; Baba, Toshihiko

  • Author_Institution
    Div. of Electr. & Comput. Eng., Yokohama Nat. Univ., Japan
  • Volume
    17
  • Issue
    8
  • fYear
    1999
  • fDate
    8/1/1999 12:00:00 AM
  • Firstpage
    1500
  • Lastpage
    1508
  • Abstract
    The scattering matrix method was applied to the analysis of finite two-dimensional photonic crystals and lightwave devices. Results indicated that 1) the light transmission at the photonic band gap (PBG) is suppressed to less than -30 dB in the densely packed and honeycomb crystals, both of which are composed of only four rows of unit cells of semiconductor columns and 2) this PBG effect is weakened to half when the nonuniformity from 10 to 30% is brought to the diameter of columns. Also, the light propagation in defect waveguides with abrupt bends, a branch and a directional coupler was demonstrated by this method. It was found that the coupling loss at the input end of the waveguide is drastically changed by the shape of the input end. The reflection loss at 600 bends was estimated to be less than 1 dB, and the excess loss at an abrupt Y-branch was estimated to be 0-4.6 dB, depending on the frequency of the input wave. The demultiplexing and power dividing functions were expected in a directional coupler with a submicron coupling length, which is considered to be due to antiguide characteristics of the waveguides
  • Keywords
    integrated optoelectronics; light scattering; matrix algebra; optical directional couplers; optical losses; optical waveguide theory; photonic band gap; reflectivity; 0 to 4.6 dB; 1 dB; abrupt Y-branch; abrupt bends; antiguide characteristics; coupling loss; defect waveguides; demultiplexing; densely packed crystals; directional coupler; finite 2D photonic crystals; finite two-dimensional photonic crystals; honeycomb crystals; input wave; light propagation; light transmission; lightwave devices; photonic band gap; power dividing functions; reflection loss; scattering matrix method; semiconductor columns; submicron coupling length; Directional couplers; Frequency estimation; Light scattering; Optical propagation; Particle scattering; Photonic band gap; Photonic crystals; Semiconductor waveguides; Transmission line matrix methods; Waveguide transitions;
  • fLanguage
    English
  • Journal_Title
    Lightwave Technology, Journal of
  • Publisher
    ieee
  • ISSN
    0733-8724
  • Type

    jour

  • DOI
    10.1109/50.779177
  • Filename
    779177