A New Ultrasonic Method for Measuring Elastic Moduli in Unsupported Thin Films: Application to Cu-Pd Superlattices,

Abstract

We have developed a new ultrasonic method for measuring the phase velocity of longitudinal and shear waves in self-supporting thin films. The film is bonded at one end to an interdigital transducer (lDT) which emits a continuous wave signal. The film is supported at the other end and maintained flat under a weak tension. A receiving lDT detects the in-phase and quadrature components of the sound waves as they propagate. A liquid bond is used between the receiving lDT and the film to allow a continuous variation of the path length. From the longitudinal and shear wave velocities, we can deduce the flexural and shear moduli of the film. For films of uniaxial or higher symmetry, the Young's and biaxial moduli can be expressed as combinations of the flexural and shear moduli. We applied this technique to Cu-Pd composition modulated thin films. Contrary to previous reports, we have not observed the supermodulus effect in either the flexural, shear, Young's or biaxial moduli for modulation wavelengths between 13 and 36 A. jg

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Document Details

Document Type
Technical Report
Publication Date
Jan 01, 1986
Accession Number
ADA292269

Entities

People

  • A. Moreaus
  • B. Davis
  • J. B. Ketterson

Organizations

  • Northwestern University

Tags

Communities of Interest

  • Advanced Electronics
  • Air Platforms

DTIC Thesaurus Topics

  • Accuracy
  • Acoustic Propagation
  • Continuous Waves
  • Diffraction
  • Doppler Effect
  • Electromagnetic Radiation
  • Films
  • Frequency
  • Materials
  • Materials Science
  • Measurement
  • Plane Waves
  • Scattering
  • Secondary Waves
  • Thin Films
  • Transducers
  • Ultrasounds

Fields of Study

  • Physics

Readers

  • Atmospheric Science / Meteorology, specifically Wind Wave Turbulence.
  • Mechanical Engineering/Mechanics of Materials.
  • Thin Film Deposition Science.