• DocumentCode
    3611212
  • Title

    Acoustical physical constants around room temperature for Ca3TaGa1.5Al1.5Si2O14 single crystal

  • Author

    Ohashi, Y. ; Kudo, T. ; Yokota, Y. ; Shoji, Y. ; Kurosawa, S. ; Kamada, K. ; Yoshikawa, A.

  • Author_Institution
    Inst. for Mater. Res., Tohoku Univ., Sendai, Japan
  • Volume
    51
  • Issue
    24
  • fYear
    2015
  • Firstpage
    1957
  • Lastpage
    1958
  • Abstract
    A full set of acoustical physical constants was determined for Ca3TaGa1.5Al1.5Si2O14 (CTGAS) single crystal from bulk wave velocities measured by the ultrasonic micro-spectroscopy method. Several plate specimens were cut perpendicular to the X-, Y-, Z-, 35.25°Y-, and 139.74°Y-directions from a CTGAS single crystal ingot grown by Czochralski technique. Following measurements of dielectric constants and density, elastic constants, piezoelectric constants, and their temperature coefficients were determined from longitudinal wave and shear wave velocities measured for the CTGAS specimens at around room temperature. It was demonstrated that the as found constants could provide calculation accuracy within ±0.15% in leaky surface acoustic wave velocity. The determined constants were used for numerical calculation of the cut angle, at which the temperature coefficient of shear wave velocity becomes zero. This angle corresponded to 147.9°Y-cut substrate that had electromechanical coupling factor of k2 = 3.2%. This parameter is about four times greater than that of AT-cut α-quartz.
  • Keywords
    aluminium compounds; calcium compounds; elastic constants; gallium compounds; permittivity; piezoelectric materials; piezoelectricity; surface acoustic waves; tantalum compounds; ultrasonic velocity; Ca3TaGa1.5Al1.5Si2O14; Czochralski technique; acoustical physical constants; bulk wave velocity; cut angle; density measurements; dielectric constants; elastic constants; electromechanical coupling factor; leaky surface acoustic wave velocity; longitudinal wave velocity; numerical calculation; piezoelectric constants; plate specimens; shear wave velocity; single crystal ingot; temperature coefficients; ultrasonic microspectroscopy;
  • fLanguage
    English
  • Journal_Title
    Electronics Letters
  • Publisher
    iet
  • ISSN
    0013-5194
  • Type

    jour

  • DOI
    10.1049/el.2015.2693
  • Filename
    7335718