• DocumentCode
    1742059
  • Title

    Ultrafast resonant Rayleigh scattering from semiconductor microcavities: signatures of disorder in the normal mode coupling regime

  • Author

    Shchegrov, A.V. ; Bloch, J. ; Birkedal, D. ; Shah, J.

  • Author_Institution
    Theory Center for Optical Sci. & Eng., Rochester Univ., NY, USA
  • fYear
    2000
  • fDate
    12-12 May 2000
  • Firstpage
    237
  • Abstract
    Summary form only given. Novel experimental techniques have provided a unique opportunity to study the effects of disorder in semiconductor nanostructures through isolating the component of resonant secondary emission that exists solely due to disorder-resonant Rayleigh scattering (RRS). While for quantum wells (QW) these opportunities have already led to new physical insight, the first experiments on RRS from microcavities (MC) with embedded QW still await theoretical developments. So far no theory has been able to provide detailed understanding of the complicated process of RRS from MC in the normal-mode coupling regime. We present a resolution of this problem by developing a novel microscopic theory that gives a qualitative and quantitative description of the spectral, temporal, and angular properties of MC RRS. A physical picture provided by this theory is thoroughly tested and verified by our ultrafast interferometric experiments.
  • Keywords
    Rayleigh scattering; coupled mode analysis; excitons; high-speed optical techniques; light interferometry; micro-optics; optical resonators; semiconductor quantum wells; stimulated scattering; angular properties; disorder signatures; many-body techniques; microscopic theory; normal mode coupling regime; quantum well exciton; semiconductor microcavities; spectral properties; temporal properties; two-particle photon propagator; ultrafast interferometric observations; ultrafast resonant Rayleigh scattering; Microcavities; Rayleigh scattering; Resonance;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Quantum Electronics and Laser Science Conference, 2000. (QELS 2000). Technical Digest
  • Conference_Location
    San Francisco, CA, USA
  • ISSN
    1094-5695
  • Print_ISBN
    1-55752-608-7
  • Type

    conf

  • Filename
    902045