• DocumentCode
    764693
  • Title

    Dispersion-tailored few-mode fibers: a versatile platform for in-fiber photonic devices

  • Author

    Ramachandran, Siddharth

  • Author_Institution
    OFS Labs., Somerset, NJ, USA
  • Volume
    23
  • Issue
    11
  • fYear
    2005
  • Firstpage
    3426
  • Lastpage
    3443
  • Abstract
    In-fiber devices enable a vast array of critical photonic functions ranging from signal conditioning (amplification, dispersion control) to network management (add/drop multiplexers, optical monitoring). These devices have become mainstays of fiber-optic communication systems because they provide the advantages of low loss, polarization insensitivity, high reliability, and compatibility with the transmission line. The majority of fiber devices reported to date are obtained by doping, designing, or writing gratings in the core of a single-mode fiber (SMF). Thus, these devices use the fiber only as a platform for propagating light-the device effect itself is due to some extraneously introduced material or structure (dopants for amplification, gratings for phase matching, etc.) There exists another, relatively less explored degree of freedom afforded by fibers-the ability to copropagate more than one mode. Each mode may have a uniquely defined modal dispersion and propagation characteristic. In this paper, we will describe the variety of fiber devices enabled by few-mode fibers-fibers that typically support two to four modes with suitably tailored dispersive properties. We will show that the unique dispersive properties of various modes, in conjunction with the ability to couple between them with gratings, leads to devices that offer novel solutions for dispersion compensation, spectral shaping, and polarization control, to name a few.
  • Keywords
    compensation; diffraction gratings; doping; optical communication equipment; optical fibre communication; optical fibre dispersion; optical phase matching; amplification; dispersion compensation; dispersion-tailored few-mode fibers; fiber-optic communication systems; gratings; in-fiber devices; phase matching; polarization control; spectral shaping; transmission line; Communication system control; Dispersion; Fiber gratings; Optical add-drop multiplexers; Optical arrays; Optical control; Optical fiber communication; Optical fiber devices; Optical fiber polarization; Optical propagation; Attenuators; bandpass filters; bit error rate (BER); broadband; dispersion compensation; effective area; fiber design; grating packaging; grating reliability; grating stability; gratings; group delay (GD); long-period fiber gratings (LPGs); microbends; mode conversion; noise figure; optical fiber dispersion; optical nonlinearities; optical phase matching; optical signal to noise; optical switch; optical transmission systems; polarization-dependent loss (PDL); polarizers; sensors; strain sensors; temperature sensors; tunable dispersion compensation; tunable gratings; variable optical attenuators (VOA);
  • fLanguage
    English
  • Journal_Title
    Lightwave Technology, Journal of
  • Publisher
    ieee
  • ISSN
    0733-8724
  • Type

    jour

  • DOI
    10.1109/JLT.2005.855874
  • Filename
    1561371