• DocumentCode
    36182
  • Title

    Characterization of Strongly Coupled Si-Wire Waveguides for High-Density Optical WDM and Sensing Applications

  • Author

    Gorajoobi, Shahab Bakhtiari ; Kaykisiz, M. Mustafa ; Bulgan, Erdal

  • Author_Institution
    Sch. of Mech. Eng., Istanbul Tech. Univ., Istanbul, Turkey
  • Volume
    31
  • Issue
    22
  • fYear
    2013
  • fDate
    Nov.15, 2013
  • Firstpage
    3469
  • Lastpage
    3476
  • Abstract
    This paper presents theoretical and experimental study of ultra-compact Si-wire Optical Directional Couplers (ODCs) on Silicon-on-Insulator wafer for optical signal processing. The presence of the controllable evanescent light strongly confined in the region bounded by the Si nano-wires has a large impact on the optical power coupling between waveguides. The characteristics of coupling length and power transmission in ODCs based on separation, wavelength, light field propagation distance and geometry of waveguides are described in detail by the coupled mode theory, 3-D finite-difference time-domain analysis and beam propagation method, and are confirmed by experiments. The exponential dependency of coupling length on the separation of coupled waveguides and wavelength shows interesting high-sensitivity optical sensing, switching and multiplexing properties. Custom spectral properties can be achieved by the configuration of coupled nano-wire waveguides based on their separation and lengths. We show that optimization of ODCs based on the physics of the coupled waveguides will lead to short optical devices which can be integrated as building blocks within high-density photonic circuits with the desired spectral characteristics. In the end, two new systems based on Mach-Zehnder structure and Micro-Ring Resonators are proposed in which ODCs are implemented as embedded tunable devices resulting in more functional optical sensing and signal processing devices.
  • Keywords
    elemental semiconductors; finite difference time-domain analysis; light propagation; micro-optics; micromechanical resonators; nanophotonics; nanowires; optical couplers; optical information processing; optical switches; optical waveguides; silicon; wavelength division multiplexing; 3D finite-difference time-domain analysis; Mach-Zehnder structure; Si; SiO2; beam propagation method; coupling length; high-density optical WDM; high-density photonic circuits; high-sensitivity optical sensing; light field propagation distance; microring resonators; multiplexing properties; optical power coupling; optical signal processing; optimization; power transmission; short optical devices; silicon nanowires; silicon-on-insulator wafer; spectral properties; strongly coupled silicon-wire waveguides; switching properties; ultracompact silicon-wire optical directional couplers; Couplings; Optical device fabrication; Optical polarization; Optical sensors; Optical surface waves; Optical switches; Optical waveguides; Couplers; optical device fabrication; optical filters; optical sensors; optical switches; optical waveguides; photonic integrated circuits; wavelength division multiplexing;
  • fLanguage
    English
  • Journal_Title
    Lightwave Technology, Journal of
  • Publisher
    ieee
  • ISSN
    0733-8724
  • Type

    jour

  • DOI
    10.1109/JLT.2013.2284246
  • Filename
    6617660