• DocumentCode
    1764477
  • Title

    An equivalent network representation of a clamped bimorph piezoelectric micromachined ultrasonic transducer with circular and annular electrodes using matrix manipulation techniques

  • Author

    Sammoura, Firas ; Smyth, Katherine ; Sang-Gook Kim

  • Author_Institution
    Microsyst. Eng., Masdar Inst. of Sci. & Technol., Abu Dhabi, United Arab Emirates
  • Volume
    60
  • Issue
    9
  • fYear
    2013
  • fDate
    Sep. 2013
  • Firstpage
    1989
  • Lastpage
    2003
  • Abstract
    An electric circuit model for a clamped circular bimorph piezoelectric micromachined ultrasonic transducer (pMUT) was developed for the first time. The pMUT consisted of two piezoelectric layers sandwiched between three thin electrodes. The top and bottom electrodes were separated into central and annular electrodes by a small gap. While the middle electrode was grounded, the central and annular electrodes were biased with two independent voltage sources. The strain mismatch between the piezoelectric layers caused the plate to vibrate and transmit a pressure wave, whereas the received echo generated electric charges resulting from plate deformation. The clamped pMUT plate was separated into a circular and an annular plate, and the respective electromechanical transformation matrices were derived. The force and velocity vectors were properly selected using Hamilton´s principle and the necessary boundary conditions were invoked. The electromechanical transformation matrix for the clamped circular pMUT was deduced using simple matrix manipulation techniques. The pMUT performance under three biasing schemes was elaborated: 1) central electrode only, 2) central and annular electrodes with voltages of the same magnitude and polarity, and 3) central and annular electrodes with voltages of the same magnitude and opposite polarity. The circuit parameters of the pMUT were extracted for each biasing scheme, including the transformer ratio, the clamped electric impedance, and the open-circuit mechanical impedance. Each pMUT scheme was characterized under different acoustic loadings using the theoretically developed model, which was verified with finite element modeling (FEM) simulation. The electrode size was optimized to maximize the electromechanical transformer ratio. As such, the developed model could provide more insight into the design, optimization, and characterization of pMUTs and allow for performance comparison with their cMUT counterparts.
  • Keywords
    deformation; electric impedance; finite element analysis; piezoelectric transducers; transformers; ultrasonic transducers; FEM; Hamilton principle; acoustic loadings; annular electrodes; annular plate; biasing schemes; boundary conditions; circular electrodes; circular plate; clamped circular bimorph piezoelectric micromachined ultrasonic transducer; clamped circular pMUT; clamped electric impedance; clamped pMUT plate; electric charges; electric circuit model; electromechanical transformation matrix; electromechanical transformer ratio; equivalent network representation; finite element modeling simulation; force vectors; matrix manipulation techniques; open-circuit mechanical impedance; piezoelectric layers; plate deformation; pressure wave; strain mismatch; velocity vectors; voltage sources; Acoustics; Electrodes; Force; Integrated circuit modeling; Shape; Vectors; Vibrations;
  • fLanguage
    English
  • Journal_Title
    Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0885-3010
  • Type

    jour

  • DOI
    10.1109/TUFFC.2013.2784
  • Filename
    6587408