• DocumentCode
    2048003
  • Title

    Development of a new fabrication method for stacked optical waveguides using inorganic-organic copolymers

  • Author

    Streppel, U. ; Dannberg, P. ; Waechter, C. ; Braeuer, A. ; Nicole, P. ; Froehlich, L. ; Houbertz, R. ; Popall, M.

  • Author_Institution
    Fraunhofer Inst. for Appl. Opt. & Precision Eng., Jena, Germany
  • fYear
    2001
  • fDate
    21-24 Oct. 2001
  • Firstpage
    329
  • Lastpage
    335
  • Abstract
    We present a recently developed technology for the stacking of optical waveguides using hybrid inorganic-organic polymers (ORMOCER(R)s). Among advantages with respect to the use of low-cost conventional processing methods (e.g. photopatterning, spin coating), this material system offers high thermal stability and low optical attenuation at telecom wavelengths. The stacking process faces several fundamental problems, such as broadening of the structures during UV patterning or the appearance of index inhomogeneities generated by diffusion effects. In addition, the nonlinear index change of the polymer materials during polymerization has to be considered carefully to ensure defined index distributions in all layers. A solution meeting these requirements, substantially reverting to standard processes, is presented. The key points, an UV absorber method and a combined UV and thermal curing, are investigated in detail. As an example, the realization and test of an optical fanout element composed of four waveguide layers, each with 8 channels of equal path lengths, is shown.
  • Keywords
    integrated optics; optical fabrication; optical losses; optical polymers; optical waveguides; polymer blends; polymerisation; thermal stability; ORMOCERs; UV absorber method; UV patterning; combined UV thermal curing; defined index distributions; diffusion effects; index inhomogeneities; inorganic-organic copolymers; integrated optical component integration density; integrated optical modules; low optical attenuation; nonlinear index change; optical fanout element; polymerization; stacked optical waveguide fabrication; structure broadening; telecom wavelengths; thermal stability; vertical integration scheme; Coatings; Nonlinear optics; Optical attenuators; Optical device fabrication; Optical materials; Optical polymers; Optical waveguides; Stacking; Telecommunications; Thermal stability;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Polymers and Adhesives in Microelectronics and Photonics, 2001. First International IEEE Conference on
  • Conference_Location
    Potsdam, Germany
  • Print_ISBN
    0-7803-7220-4
  • Type

    conf

  • DOI
    10.1109/POLYTR.2001.973304
  • Filename
    973304