• DocumentCode
    981690
  • Title

    Two-Photon Photovoltaic Effect in Silicon

  • Author

    Fathpour, Sasan ; Tsia, Kevin K. ; Jalali, Bahram

  • Author_Institution
    Univ. of California, Los Angeles
  • Volume
    43
  • Issue
    12
  • fYear
    2007
  • Firstpage
    1211
  • Lastpage
    1217
  • Abstract
    Optical amplification, wavelength conversion, and a myriad of other functions that were once considered to be beyond silicon´s reach have been made possible by the material´s nonlinear optical properties. The common feature of such devices is the high optical intensity that is required to induce the nonlinear optical interactions. Concurrent with the useful nonlinearities (Raman and Kerr) are two-photon absorption and free carrier scattering, which are two related and harmful phenomena that render silicon lossy at high intensities. This paper explores the use of the two-photon photovoltaic effect as a means to counter these phenomena in an energy-efficient manner. The effect reduces losses due to free carrier scattering and serendipitously scavenges the optical energy lost to two-photon absorption. Analytical and numerical modeling of the two-photon photovoltaic effect in silicon devices is presented. The model is validated through comparison with experimental results and is used to establish the limits of this approach for creating energy-efficient silicon photonic devices.
  • Keywords
    Raman lasers; elemental semiconductors; integrated optics; integrated optoelectronics; optical Kerr effect; optical fibre amplifiers; optical losses; photovoltaic effects; semiconductor optical amplifiers; silicon; two-photon processes; Si; energy-efficient silicon photonic devices; free carrier scattering; nonlinear optical material; optical energy; optical loss; silicon Raman amplifiers; two-photon absorption; two-photon photovoltaic effect; Absorption; Nonlinear optical devices; Nonlinear optics; Optical devices; Optical scattering; Optical wavelength conversion; Photovoltaic effects; Raman scattering; Silicon; Stimulated emission; Energy harvesting; Kerr effect; Raman effect; nonlinear optics; optical amplifiers; photovoltaic effect; silicon photonics; two-photon absorption;
  • fLanguage
    English
  • Journal_Title
    Quantum Electronics, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0018-9197
  • Type

    jour

  • DOI
    10.1109/JQE.2007.907545
  • Filename
    4384661