Design and Simulation of PZT-based MEMS Piezoelectric Sensors

被引:0
|
作者
Baker, Doyle J. [1 ]
Gonder, Casey [1 ]
Williams, Frances [1 ,2 ]
Bahoura, Messaoud [1 ,2 ]
Myers, Oliver [3 ]
机构
[1] Norfolk State Univ, Ctr Mat Res, Norfolk, VA 23504 USA
[2] Norfolk State Univ, Dept Engn, Norfolk, VA 23504 USA
[3] Mississippi State Univ, Mech Engn Dept, Mississippi State, MS USA
关键词
PZT; MEMS; Sensors; Piezoelectric; COMSOL;
D O I
10.1117/12.2045153
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Devices with increased sensitivities are needed for various applications including the detection of chemical and biological agents. This paper presents the design of microelectromechanical systems (MEMS) devices that incorporate lead zirconate titanate (PZT) films in order to realize highly sensitive sensors. In this work, the piezoelectric properties of the PZT are exploited to produce sensors that perform optimally for mass sensing applications. The sensor is designed to operate as a thin-film bulk acoustic resonator (TFBAR) whereas a piezoelectric is sandwiched between electrodes and senses a change in mass by measuring a change in resonance frequency. Modeling of the TFBAR sensor, using finite element analysis software COMSOL, was performed to examine optimal device design parameters and is presented in this paper. The effect of the PZT thickness on device resonance is also presented. The piezoelectric properties of the PZT is based on its crystal structure, therefore, optimization of the PZT film growth parameters is also described in this work. A detailed description of the fabrication process flow developed based on the optimization of the device design and film growth is also given. The TFBAR sensor consists of 150 nm of PZT, 150nm of silicon dioxide, silicon substrate, titanium/platinum bottom electrodes, and aluminum top electrodes. The top electrodes are segmented to increase the sensitivity of the sensor. The resonance frequency of the device is 3.2 GHz.
引用
收藏
页数:9
相关论文
共 50 条
  • [1] PZT-Based Piezoelectric MEMS Technology
    Smith, Gabriel L.
    Pulskamp, Jeffrey S.
    Sanchez, Luz M.
    Potrepka, Daniel M.
    Proie, Robert M.
    Ivanov, Tony G.
    Rudy, Ryan Q.
    Nothwang, William D.
    Bedair, Sarah S.
    Meyer, Christopher D.
    Polcawich, Ronald G.
    [J]. JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 2012, 95 (06) : 1777 - 1792
  • [2] Design and Simulation of PZT based MEMS Piezoelectric Accelerometer
    Naduvinamani, Sujata
    Iyer, Nalini C.
    [J]. 2016 INTERNATIONAL CONFERENCE ON ELECTRICAL, ELECTRONICS, AND OPTIMIZATION TECHNIQUES (ICEEOT), 2016, : 3715 - 3721
  • [3] Design of a PZT-based MEMS Rotman lens
    Sinjari, Ahmad
    Chowdhury, Sazzadur
    [J]. 2008 CANADIAN CONFERENCE ON ELECTRICAL AND COMPUTER ENGINEERING, VOLS 1-4, 2008, : 1068 - 1071
  • [4] Advances in piezoelectric PZT-based RF MEMS components and systems
    Benoit, R. R.
    Rudy, R. Q.
    Pulskamp, J. S.
    Polcawich, R. G.
    Bedair, S. S.
    [J]. JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2017, 27 (08)
  • [5] Design and analysis of the PZT-based piezoelectric transformer
    Kozielski, Lucian
    Lisihska-Czekaj, Agata
    Czekaj, Dionizy
    [J]. ADVANCED MATERIALS FORUM III, PTS 1 AND 2, 2006, 514-516 : 198 - 201
  • [6] Micromachining of PZT-based MEMS
    Myers, TB
    Bose, S
    Bandyopadhyay, A
    Fraser, JD
    [J]. AMERICAN CERAMIC SOCIETY BULLETIN, 2003, 82 (01): : 30 - 34
  • [7] Optimization of PZT-based MEMS
    Akasheh, F
    Myers, T
    Bose, S
    Bandyopadhyay, A
    [J]. BIOMEMS AND BIONANOTECHNOLOGY, 2002, 729 : 57 - 62
  • [8] PZT-based flexible piezoelectric sensors for real-time condition monitoring
    Jin, Liang
    Song, Juheng
    Liu, Lu
    Jia, Yufang
    [J]. AIP ADVANCES, 2024, 14 (02)
  • [9] Optimal design of PZT-based piezoelectric energy harvesting module for availability
    Park, Sanghyun
    Hong, Seong Kwang
    Lee, Tae Hee
    Kang, Kwangu
    Cho, Su-gil
    [J]. JOURNAL OF MECHANICAL SCIENCE AND TECHNOLOGY, 2019, 33 (03) : 1211 - 1218
  • [10] Optimal design of PZT-based piezoelectric energy harvesting module for availability
    Sanghyun Park
    Seong Kwang Hong
    Tae Hee Lee
    Kwangu Kang
    Su-gil Cho
    [J]. Journal of Mechanical Science and Technology, 2019, 33 : 1211 - 1218