• DocumentCode
    1089174
  • Title

    Optical quantum noise treated with classical electrical network theory

  • Author

    Berglind, Eilert ; Gillner, Lars

  • Author_Institution
    Dept. of Microwave Eng., R. Inst. of Technol., Stockholm, Sweden
  • Volume
    30
  • Issue
    3
  • fYear
    1994
  • fDate
    3/1/1994 12:00:00 AM
  • Firstpage
    846
  • Lastpage
    853
  • Abstract
    A field noise spectral density matrix for the noise from a linear optical device, modeled as an optical multiport, is derived semi-classically. The noise is formulated in the scattering parameters, population inversion factor, and internal efficiency of the device. From this noise expression, a new equation for the amplified spontaneous emission spectral density from an optical amplifier is derived. This equation is more general than those previously published. The derivations are accomplished with the aid of methods from ordinary (classical) electrical network theory and only one quantum mechanical result regarding the noise from a conductance. As a result, the first-mentioned noise expression also includes the so-called vacuum field fluctuations. Further, the current noise spectrum of a square-law detector is derived with classical methods. The optical input to the detector includes the vacuum field fluctuations, which are shown to be the cause of the detector shot noise. Here, a second quantum mechanical result has to be employed, viz., that the vacuum field fluctuations cannot be detected alone. The results in this paper agree with the special cases found in the literature. The noise expressions are well suited for examination of the optical noise performance of arbitrary linear optical networks including, e.g., amplifiers, attenuators, isolators, reflections, filters, and couplers
  • Keywords
    circuit theory; fluctuations; laser theory; population inversion; quantum optics; semiconductor device noise; semiconductor lasers; superradiance; amplified spontaneous emission spectral density; amplifiers; arbitrary linear optical networks; attenuators; classical electrical network theory; classical methods; conductance; current noise spectrum; detector shot noise; field noise spectral density matrix; internal efficiency; linear optical device; noise expression; optical amplifier; optical multiport; optical quantum noise; population inversion factor; quantum mechanical result; scattering parameters; semi-classically; square-law detector; vacuum field fluctuations; Equations; Fluctuations; Optical attenuators; Optical devices; Optical fiber networks; Optical filters; Optical noise; Optical scattering; Semiconductor optical amplifiers; Stimulated emission;
  • fLanguage
    English
  • Journal_Title
    Quantum Electronics, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0018-9197
  • Type

    jour

  • DOI
    10.1109/3.286178
  • Filename
    286178