Second Harmonic Generation

Abstract

Investigations are being conducted under the subject contract with the objective of producing high average powers at a wavelength of 0.532 microns, with a short pulse and high repetition frequency format. The program objectives are to be achieved by utilizing a high average power CW Nd:YAG laser combined with electro-optic Q-switching technique and mode-locked pulse injection as a source of 1.065 micron radiation to drive a nonlinear crystal. To date, it has been demonstrated that mode-locked pulse injection combined with Q-switching in a CW high power Nd:YAG laser can be made to function reproducibly, creating substantial increases in peak power while yielding substantial enhancement in second harmonic conversion efficiency. The general conclusion that the authors have reached is that in order to produce average powers at 0.53 microns of greater than 20 watts it will be necessary to take steps to alleviate the thermal limitations of the harmonic generating crystals. This can be accomplished through an improvement in the materials themselves and the use of mechanical techniques which either distribute the thermal loading over a larger crystal volume or improve markedly the rate of heat removal. A discussion of these techniques will be presented in the final report.

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Document Details

Document Type
Technical Report
Publication Date
May 15, 1971
Accession Number
AD0729681

Entities

People

  • Edward G. Erickson
  • James H. Boyden

Tags

Communities of Interest

  • Energy and Power Technologies

DTIC Thesaurus Topics

  • Arsenates
  • Conversion
  • Detectors
  • Laser Beams
  • Laser Resonators
  • Lasers
  • Light (Electromagnetic Radiation)
  • Measurement
  • Modulation
  • Modulators
  • Optical Materials
  • Optical Properties
  • Phase Modulation
  • Pockels Cells
  • Repetition Rate
  • Two Photon Absorption
  • Yag Lasers

Fields of Study

  • Physics

Readers

  • Optical Physics and Photonics.
  • Systems Analysis and Design

Technology Areas

  • Directed Energy