• DocumentCode
    781949
  • Title

    Understanding air-core photonic-bandgap fibers: analogy to conventional fibers

  • Author

    Digonnet, Michel J F ; Kim, Hyang Kyun ; Kino, Gordon S. ; Fan, Shanhui

  • Author_Institution
    Edward L. Ginzton Lab., Stanford Univ., CA, USA
  • Volume
    23
  • Issue
    12
  • fYear
    2005
  • Firstpage
    4169
  • Lastpage
    4177
  • Abstract
    It is shown from basic principles that the core modes of an air-core photonic-bandgap fiber (PBF) exhibit similar qualitative and quantitative behavior as the linearly polarized (LP) modes of an equivalent conventional fiber whose step-index profile is entirely determined by the band edges of the PBF. This analogy leads to the concept of effective numerical aperture (NA), which is used to provide an intuitive interpretation of the qualitative behavior of PBF modes. By using this equivalence, several key properties, including the number of modes, their cutoff, effective index, size, and divergence, and the dependence of these quantities on the PBF core and cladding parameters, can be predicted approximately by simulating the LP modes of the equivalent step-index fiber using standard LP-mode simulators or well-known formula. Besides providing a convenient tool to model the modes of a PBF, this analogy gives new physical insight into the fundamental characteristics of these complex waveguides.
  • Keywords
    iterative methods; optical fibre cladding; optical fibre polarisation; photonic band gap; air-core fibers; band edges; cladding parameters; complex waveguides; conventional fibers; core modes; numerical aperture; photonic-band gap fibers; standard LP-mode simulators; step-index profile; Apertures; Cutoff frequency; Optical fiber polarization; Optical waveguide components; Optical waveguide theory; Optical waveguides; Photonic band gap; Predictive models; Solid modeling; Surges; Air-core photonic-bandgap fibers; LP modes; PBF; conventional solid-core fiber; numerical aperture;
  • fLanguage
    English
  • Journal_Title
    Lightwave Technology, Journal of
  • Publisher
    ieee
  • ISSN
    0733-8724
  • Type

    jour

  • DOI
    10.1109/JLT.2005.859406
  • Filename
    1566743