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Two-photon absorption induced stimulated Rayleigh-Bragg scattering

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Abstract

A frequency-unshifted and backward stimulated scattering can be efficiently generated in one-photon-absorption free but two-photon absorbing materials. Using a number of novel two-photon absorbing dye solutions as the scattering media and nanosecond pulsed laser as the pump beams, a highly directional backward stimulated scattering at the exact pump wavelength can be readily observed once the pump intensity is higher than a certain threshold level. The spectral and spatial structures as well as the temporal behavior and optical phase-conjugation property of this new type of backward stimulated scattering have been experimentally studied. This stimulated scattering phenomenon can be explained by using a model of two-photon-excitation enhanced standing-wave Bragg grating initially formed by the strong forward pump beam and much weaker backward Rayleigh scattering beam; the partial reflection of the pump beam from this grating provides an positive feedback to the initial backward Rayleigh scattering beam without suffering linear attenuation influence. Comparing to other known stimulated (Raman, Brillouin, Rayleigh-wing, and Kerr) scattering effects, the stimulated Rayleigh-Bragg scattering exhibits the advantages of no frequency-shift, low pump threshold, and low spectral linewidth requirement.

Original languageEnglish
Article number08
Pages (from-to)37-43
Number of pages7
JournalProceedings of SPIE - The International Society for Optical Engineering
Volume5646
DOIs
StatePublished - 2005
EventNonlinear Optical Phenomena and Applications - Beijing, China
Duration: Nov 8 2004Nov 11 2004

Keywords

  • Induced Bragg grating
  • Stimulated Rayleigh scattering
  • Two-photon absorbing dye solution
  • Two-photon absorption

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