• DocumentCode
    3287369
  • Title

    Design of mutually interacting multi-directional transducer configurations on a surface acoustic wave device for enhanced biosensing

  • Author

    Singh, Reetu ; Bhethanabotla, Venkat R.

  • Author_Institution
    Dept. of Chem. & Biomed. Eng., Univ. of South Florida, Tampa, FL, USA
  • fYear
    2009
  • fDate
    25-28 Oct. 2009
  • Firstpage
    1044
  • Lastpage
    1047
  • Abstract
    Transducers used in biosensing applications are plagued by biofouling, which refers to the binding of nonspecific proteins to the device surface resulting in a compromise of the device sensitivity and selectivity. Acoustic streaming, resulting from high intensity sound waves, has the potential to address the issue of biofouling elimination in biosensors. Multi-directional transducers have the capability of achieving the dual objectives of biosensing and non-specifically bound protein removal for improved sensor performance. Also, focused interdigital transducers (IDTs) have the potential for acoustic energy focusing, thereby increasing the intensity of acoustic streaming. We have identified that various crystallographic orientation allow the propagation of different modes thereby rendering them suitable for different applications. For example, in Langasite, shear horizontal modes propagate along (0, 22, 90) Euler direction while mixed modes with prominent surface normal component are obtained along (0, 22, 0) direction. Thus, the (0, 22, 90) and (0, 22, 0) directions are suitable for biosensing and is suited for removal of NSB founding proteins from device surface. In this work, we investigate a Langasite based biosensor with a mutually interacting multidirectional IDT configuration along the two identified Euler directions for enhanced biosensor performance. Uniform IDTs (U-IDTs) are employed in the (0, 22, 90) direction while focused IDTs (F-IDTs) are placed along the (0, 22, 0) direction. The enhancement in sensor performance was analyzed in terms of device sensitivity and acoustic streaming force. Our results indicate that the streaming force and the sensitivity for the device with the mutually interacting U-IDTs/F-IDTs are significantly higher when compared to uniform unidirectional IDTs. Thus, the Langasite based device with mutually interaction U-IDTs and F-IDTs represents a significant enhancement over the conventional SAW device having uniform IDTs and is b- etter suited for biosensing applications. This work broadly applies to all transducers used for biological species sensing that suffer from fouling and non-specific binding of protein molecules to the device surface.
  • Keywords
    acoustic streaming; biosensors; interdigital transducers; molecular biophysics; proteins; surface acoustic wave sensors; Langasite based biosensor; acoustic energy focusing; acoustic streaming; biofouling elimination; biosensors; crystallographic orientation; device selectivity; device sensitivity; focused interdigital transducers; high intensity sound waves; mutually interacting multidirectional transducer; nonspecific protein binding; surface acoustic wave device; Acoustic devices; Acoustic propagation; Acoustic sensors; Acoustic transducers; Acoustic waves; Biosensors; Force sensors; Potential energy; Proteins; Surface acoustic wave devices; Biosensing; Focused Interdigital Transducer; Mutually interacting IDTs; SAW sensor;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Sensors, 2009 IEEE
  • Conference_Location
    Christchurch
  • ISSN
    1930-0395
  • Print_ISBN
    978-1-4244-4548-6
  • Electronic_ISBN
    1930-0395
  • Type

    conf

  • DOI
    10.1109/ICSENS.2009.5398589
  • Filename
    5398589