• DocumentCode
    1949767
  • Title

    Generation of surface acoustic waves for general sensing applications

  • Author

    Son, Kyu Tak ; Huang, Hsu-hung ; Lee, Chin C.

  • Author_Institution
    Electr. Eng. & Comput. Sci. Dept., California Univ., Irvine, CA
  • fYear
    2008
  • fDate
    27-30 May 2008
  • Firstpage
    1690
  • Lastpage
    1694
  • Abstract
    The technology of surface acoustic waves (SAW) is widely used in a number of applications, such as detection of surface cracks or flaws, touch-panels, and SAW filters. The propagation of SAWs on the surface of solid materials has been used to detect hidden cracks or other surface discontinuities in a medium. They are also readily attenuated when a soft object touches the surface of medium. For a piezoelectric material, SAWs can be generated using a transducer of interdigitated electrodes fabricated on the surface [Herbert Matthews]. However, most materials are non-piezoelectric. A method to produce SAWs on a non-piezoelectric material is to convert from bulk acoustic waves using the equivalence of SnelPs law in Optics. To satisfy the Snell´s law, longitudinal bulk wave propagating in the acoustic prism must be slower than the SAWs on the non-piezoelectric material. This posts a challenge because the SAW velocity is approximately 60% of longitudinal wave velocity in the same material. It is very hard to find a material in which the longitudinal wave velocity is slow and the propagation loss is acceptable. Lucite is identified as meeting the low longitudinal wave velocity requirement. Acoustic right-triangle prisms with angles satisfying the Snell´s law are made of Lucite. One right-angle face is bonded with a piezoelectric transducer and the hypotenuse face is bonded to a substrate such as soda-lime glass. Another transducer-prism assembly is also bonded to the glass to detect SAWs. The total loss from the transmitter to the receiver is measured. The SAW velocity is also measured and compared with calculated value. Besides Lucite, we search for other acoustic prism materials that have better CTE match and better acoustic impedance match to both the glass and the transducer. Bismuth and liquid crystal polymer (LCP) are possible candidates.
  • Keywords
    piezoelectric transducers; surface acoustic wave sensors; surface acoustic waves; Lucite acoustic prism; SAW velocity; acoustic impedance match; acoustic prism material; acoustic right triangle prism; bismuth; liquid crystal polymer; longitudinal wave velocity; piezoelectric transducer; propagation loss; sensing application; surface acoustic waves; Acoustic materials; Acoustic propagation; Acoustic signal detection; Acoustic waves; Bonding; Glass; Optical materials; Optical surface waves; Surface acoustic waves; Surface cracks;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Electronic Components and Technology Conference, 2008. ECTC 2008. 58th
  • Conference_Location
    Lake Buena Vista, FL
  • ISSN
    0569-5503
  • Print_ISBN
    978-1-4244-2230-2
  • Electronic_ISBN
    0569-5503
  • Type

    conf

  • DOI
    10.1109/ECTC.2008.4550206
  • Filename
    4550206