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Optical power limiting and stabilization based on a novel polymer compound

  • SUNY Buffalo
  • Swiss Federal Institute of Technology Zurich
  • Swiss National Science Foundation SNF
  • Massachusetts Institute of Technology
  • University of Groningen
  • McGill University
  • DSM Food Specialties
  • DuPont
  • University of California at Santa Barbara

Research output: Contribution to journalArticlepeer-review

111 Scopus citations

Abstract

Optical power limiting and stabilization based on the two-photon absorption (TPA) mechanism is performed in a polymer solution excited by ∼810 nm and ∼7-ns laser pulses. The solute is a noval polymer, a poty(2,5-dialkoxy-p-phenylene ethynylene) derivative (EHO-OPPE). Using 1-cm path-length EHO-OPPE solution in chloroform of d 0 = 0.03 mol of repeat unit/liter as the nonlinear absorptive medium, the dynamic transmission changes from T = 0.92 to 0.28 when the input intensity of the ∼810-nm laser beam is increased from I 0 = 15 to 600 MW/cm 2. The measured nonlinear absorption coefficient β is 14.5 cm/GW. Optical power stabilization is demonstrated at an average input intensity level of I 0 ≈ 400 MW/cm 2 with a Δ ≈ ±25% peak-power fluctuation of the laser pulse. After passing through the nonlinear medium, the output peak-power fluctuation is reduced to Δ ≈ ±8%. The spectral-width effect of the input laser beam on the nonlinear absorption of the EHO-OPPF. solution is investigated. For three different spectral structures of the input laser beam (single narrow spectral line, multiple spectral lines, and broad spectral band), measured values of TPA cross section for EHO-OPPE are σ 2 = 66, 80, and 101 × 10 -20 cm 4/GW, respectively. This means that EHO-OPPE is one the best known nonlinear absorptive materials for power limiting purposes.

Original languageEnglish
Pages (from-to)2279-2285
Number of pages7
JournalIEEE Journal of Quantum Electronics
Volume34
Issue number12
DOIs
StatePublished - Dec 1998

Keywords

  • Nonlinear absorption
  • Nonlinear optics
  • Optical power limiting
  • Optical power stabilization
  • Two-photon abtorption

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