Relaxation of Polar Orientational Order in Nonlinear Optical Polymers by Second Harmonic Generation

Abstract

An investigation of the decay of the second harmonic generation (SHG) signals from a main chain accordion and a guest/host nonlinear optical (NLO) polymer has been carried out. The shape of the decay of the SHG signal from the main chain polymer is stretched exponential with the width parameter, beta, increasing with increasing temperature. The increase in beta indicates a narrowing of the distribution of relaxation times. On the other hand, the SHG decay signal from the guest/host system polarized with contact electrode poling is found to be better described by the sum of two single exponential functions with the first short time component affected strongly by the surface charge effect and the second slow component associated with the relaxation of the macroscopic polarization. The time constant of the slow component is found to be successively increasing with the poling/decay cycle and reaches a steady state value after several cycles. The relaxation time lengthening effect is obtained both above and below Tg. The effect is considered to be due to trapped charges that enhance the polar orientation correlation.

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Document Details

Document Type
Technical Report
Publication Date
Jun 15, 1994
Accession Number
ADA283024

Entities

People

  • C. H. Wang
  • H. W. Guan
  • S. H. Gu

Organizations

  • University of Nebraska-Lincoln Department of Chemistry

Tags

Communities of Interest

  • Advanced Electronics
  • C4I

DTIC Thesaurus Topics

  • Arrhenius Equation
  • Demographic Cohorts
  • Electric Fields
  • Electromagnetic Fields
  • Equations
  • Exponential Functions
  • Films
  • Glass Transition Temperature
  • Intensity
  • Materials
  • Military Research
  • Optoelectronic Devices
  • Polymeric Films
  • Relaxation Time
  • Second Harmonic Generation
  • Steady State
  • Transition Temperature

Fields of Study

  • Physics

Readers

  • Materials Science and Engineering.
  • Mathematics or Statistics
  • Polymer Science and Technology