• DocumentCode
    684432
  • Title

    3D MEMS piezoelectric ultrasound transducer technology

  • Author

    Hajati, A. ; Latev, Dimitre ; Gardner, D.

  • Author_Institution
    FUJIFILM Dimatix, Inc., Santa Clara, CA, USA
  • fYear
    2013
  • fDate
    21-25 July 2013
  • Firstpage
    231
  • Lastpage
    235
  • Abstract
    Here we present a high performance 3D MEMS ultrasound transducer technology called Clarinet™ based on a combination of micromachined dome-shaped piezoelectric resonators arranged in a flexible architecture. In a drastic departure from typical PMUT membranes, our high performance PZNT thin film is integrated into a 3D dome-shaped membrane as the transducer´s building block. Three different types of ultrasound array are presented as an example of this flexible architecture in which the frequency response has been tailored by mixing these basic cells and modifying their dimensions by lithography. These demonstrate customizable performance capabilities such as an acoustic intensity up to 300 W/cm2, one-way insertion loss as low as -4.2 dB, and ultra wide-bandwidth suitable for both therapeutic and imaging applications. In addition, low electrical impedance, and a low operating voltage compatible with ordinary integrated circuitry are characteristics of all the designs.
  • Keywords
    micromachining; micromechanical resonators; microsensors; piezoelectric transducers; thin film devices; ultrasonic transducer arrays; 3D dome-shaped membrane; Clarinet; PMUT membranes; flexible architecture; frequency response; high performance 3D MEMS piezoelectric ultrasound transducer technology; high performance PZNT thin film; lithography; low electrical impedance; micromachined dome-shaped piezoelectric resonators; ultrasound array; Films; Imaging; Piezoelectric polarization; Resonant frequency; Silicon; Three-dimensional displays; Transducers; 3D; Dome; HIFU; MEMS; PMUT; PZNT; ultra wide bandwidth;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Applications of Ferroelectric and Workshop on the Piezoresponse Force Microscopy (ISAF/PFM), 2013 IEEE International Symposium on the
  • Conference_Location
    Prague
  • Type

    conf

  • DOI
    10.1109/ISAF.2013.6748661
  • Filename
    6748661