Realistic theory of electromagnetically-induced transparency and slow light in a hot atomic vapor

R. Ghosh, J. Ghosh, F. Goldfarb, J. L. Le Gouët, F. Bretenaker

Research output: Contribution to journalConference articlepeer-review

Abstract

We present a realistic theoretical treatment of a three-level A system in a hot atomic vapor interacting with a coupling and a probe field of arbitrary strengths, leading to electromagnetically-induced transparency and slow light under the two-photon resonance condition. We take into account all the relevant decoherence processes including collisions. Velocity-changing collisions (VCCs) are modeled in the strong collision limit effectively, which helps in achieving optical pumping by the coupling beam across the entire Doppler profile. We take into account a dynamic rate of influx of atoms in the two lower levels of the A, and an outflux from all the three levels. The steady-state expressions for the atomic density-matrix elements are numerically evaluated to yield the experimentally measured response characteristics. Our predictions are in excellent agreement with the reported experimental results for 4He*. The role played by the VCC parameter is seen to be distinct from that by the transit time or Raman coherence decay rate.

Original languageEnglish
Article number72260J
JournalProceedings of SPIE - The International Society for Optical Engineering
Volume7226
DOIs
Publication statusPublished - 6 Apr 2009
Externally publishedYes
EventAdvances in Slow and Fast Light II - San Jose, CA, United States
Duration: 25 Jan 200927 Jan 2009

Keywords

  • Induced transparency
  • Lambda system
  • Slow light
  • Velocity-changing collisions

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