• DocumentCode
    802395
  • Title

    Study of Raman amplification properties in triangular photonic crystal fibers

  • Author

    Fuochi, M. ; Poli, F. ; Selleri, S. ; Cucinotta, A. ; Vincetti, L.

  • Author_Institution
    Dipt. di Ingegneria dell´´Informazione, Univ. di Parma, Italy
  • Volume
    21
  • Issue
    10
  • fYear
    2003
  • Firstpage
    2247
  • Lastpage
    2254
  • Abstract
    The Raman properties of triangular photonic crystal fibers (PCFs) are analyzed in order to design a fiber for Raman amplification with enhanced performances. By casting the Raman intensity propagation equations, the Raman effective area and the Raman gain coefficient are introduced - two meaningful parameters that take into account the overlap between the pump and signal profiles. The behavior of these two parameters is examined in silica PCFs as a function of the geometrical characteristics of the triangular lattice. The numerical results show that a proper design of the hole diameter and the spacing between air holes can minimize the Raman effective area and maximize the Raman gain coefficient. The paper then focuses on PCFs with a germania-doped core. It is found that, for a given PCF cross section and dimension of the doped region, the Raman gain coefficient increases linearly with germania concentration. Moreover, by enlarging the doped region, it is discovered that a PCF with a germania-doped area internally tangent to the first ring of air holes has a maximum Raman gain coefficient. Finally, the calculated values of the Raman gain coefficient are compared with those of other highly nonlinear fibers presented in the literature, showing that a well-designed triangular PCF can significantly improve Raman gain performance.
  • Keywords
    Raman lasers; finite element analysis; optical fibre amplifiers; optical fibre theory; photonic crystals; stimulated Raman scattering; Raman amplification properties; Raman effective area; Raman gain coefficient; Raman intensity propagation equations; SiO2; SiO2-GeO2; air hole spacing; full-vector finite-element method; germania concentration; germania-doped core; highly nonlinear fibers; hole diameter design; numerical results; pump signal profile overlap; silica PCFs; triangular lattice geometrical characteristics; triangular photonic crystal fibers; Casting; Lattices; Noise reduction; Optical fibers; Optical noise; Performance analysis; Performance gain; Photonic crystal fibers; Silicon compounds; Stimulated emission;
  • fLanguage
    English
  • Journal_Title
    Lightwave Technology, Journal of
  • Publisher
    ieee
  • ISSN
    0733-8724
  • Type

    jour

  • DOI
    10.1109/JLT.2003.818171
  • Filename
    1236495