• DocumentCode
    1556396
  • Title

    Temporal self-imaging effects: theory and application for multiplying pulse repetition rates

  • Author

    Azaña, José ; Muriel, Miguel A.

  • Author_Institution
    ETSI Telecomunicacion, Univ. Politecnica de Madrid, Spain
  • Volume
    7
  • Issue
    4
  • fYear
    2001
  • Firstpage
    728
  • Lastpage
    744
  • Abstract
    A time-domain equivalent of the spatial Talbot or self-imaging phenomenon appears when a periodic temporal signal propagates through a dispersive medium under first-order dispersion conditions. The effect is of great interest because it can be applied for multiplying the repetition rate of an arbitrary periodic pulse train without distorting the individual pulse features and essentially without loss of energy. In this way, pulse sequences in the terahertz regime can be generated from typical mode-locked pulse streams (with a few gigahertz repetition rates). The Talbot-based repetition-rate-multiplication technique can be implemented by using a linearly chirped fiber grating (LCFG) as the dispersive medium. As compared with other alternatives, an LCFG can be designed to provide the required bandwidth and dispersion characteristics in significantly more compact forms. Here, by using a signal-theory-based approach, we carry out a general theoretical analysis of the temporal self-imaging phenomenon and derive analytical expressions for all cases of interest (integer and fractional self-imaging effects). We also show how to design a LCFG for implementing the repetition-rate-multiplication technique and discuss the impact of nonidealities in the grating´s response on the multiplication process. Results of our study are relevant from both a physical and a practical perspective
  • Keywords
    chirp modulation; diffraction gratings; optical fibre communication; optical fibre dispersion; optical fibre filters; optical images; optical modulation; optical pulse generation; time-domain analysis; OTDM; Talbot-based repetition-rate-multiplication technique; WDM; analytical expressions; arbitrary periodic pulse train; dispersive medium; first-order dispersion conditions; fractional self-imaging effects; gigahertz repetition rates; grating response; individual pulse features; linearly chirped fiber grating; mode-locked pulse streams; multiplying pulse repetition rates; optical fiber communications; optical pulse generation; periodic temporal signal; repetition-rate-multiplication technique; self-imaging phenomenon; signal-theory-based approach; spatial Talbot phenomenon; temporal self-imaging effects; temporal self-imaging phenomenon; terahertz regime; time-domain equivalent; wavelength-division multiplexing; Diffraction; Equations; Gratings; Optical fiber dispersion; Optical propagation; Optical pulses; Signal analysis; Talbot effect; Telecommunications; Time domain analysis;
  • fLanguage
    English
  • Journal_Title
    Selected Topics in Quantum Electronics, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    1077-260X
  • Type

    jour

  • DOI
    10.1109/2944.974245
  • Filename
    974245