Stochastic Photolysis: A New Method for Measuring Rates of Photosensitive Reactions.

Abstract

A new method is introduced for the measurement of photochemical or photobiological reaction rates. Based on linear response theory, the method uses a randomly modulated light source rather than a pulsed one, and employs cross-correlation analysis to extract the desired kinetic information. In operation, a randomly varying light source illuminates the reaction of interest, and the resulting fluctuations in reactant (or product) concentrations are monitored. Mathematical or instrumental cross correlation of the light source variations with those in component concentration then produces the familiar kinetic decay curve. Because the new method produces only minute concentration fluctuations, it can measure reaction rates very near equilibrium; moreover, equilibrium position can be shifted by superimposing on the fluctuating light intensity a dc level. Also, because cross correlation is employed, the method enjoys high signal-to-noise ratios. In the present study, the utility and practicability of the new technique are demonstrated through examination of the recombination kinetics of photolytically generated iodine atoms. (Author)

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Document Details

Document Type
Technical Report
Publication Date
Jun 25, 1981
Accession Number
ADA100859

Entities

People

  • G. R. Haugen
  • Gary M. Hieftje
  • L. L. Steinmetz
  • R. E. Russo

Organizations

  • Indiana University

Tags

Communities of Interest

  • Biomedical
  • Energy and Power Technologies
  • Ground and Sea Platforms

DTIC Thesaurus Topics

  • Chemical Kinetics
  • Chemical Reactions
  • Correlation Analysis
  • Correlation Techniques
  • Correlators
  • Cross Correlation
  • Equations
  • Frequency Response
  • Lasers
  • Light Sources
  • Measurement
  • Military Research
  • Modulators
  • New York
  • Optical Modulators
  • United States
  • Waveforms

Readers

  • Molecular Photonics/Laser Physics
  • Radar Systems Engineering.
  • Systems Analysis and Design