• DocumentCode
    2987016
  • Title

    Fe3O4 magnetic enhanced CMOS MEMS compatible gas sensor

  • Author

    Shi-Ching Ke ; Chih-Hsiung Shen

  • Author_Institution
    Dept. of Mechatron. Eng., Nat. Changhua Univ. of Educ., Changhua, Taiwan
  • fYear
    2013
  • fDate
    22-25 Oct. 2013
  • Firstpage
    1
  • Lastpage
    4
  • Abstract
    A new magnetic-catalytic sensing mechanism to increase sensitivity for CMOS MEMS gas sensor with mesh stacked sensing electrodes is proposed. Beyond the conventional power dissipation of heating to maintain a certain working temperature, a novel gas sensor with magnetic-catalytic mechanism works at the ambient temperature without the consideration of active heating. The design and fabrication is realized by the standard 0.35μm CMOS process to fabricate a gas sensor with mesh stacked electrodes. For the preparation of magnetic sensing material, a prepared solution of sol-gel SnO2 is mixed at SnO2 : Fe3O4 = 3:1, which was deposited onto mesh stacked electrodes. Moreover, to obtain a stable gas sensing signal, a pulse sampling scheme is proposed in this research work. Since the resistance of sensing material with sol-gel deposition shows a drift behavior under a DC bias circuit. We have proposed a new signal reading scheme with a pulse-type bias for a bridge sensing circuit. Only under the sampling phase, the sensing current flows through the sensing material which induces a voltage drop across the resistance. For the CO concentration measurement, the sample is tested and verified inside a CO gas chamber with a magnetic field generator of solenoid coil. A careful investigation of measurement results, at horizontal magnetic field, the sensitivity of proposed CO gas sensor reaches 0.492%/ppm under the 12.12 Gauss which shows widely applicable for an ultra-low power chemical microsensor with high sensitivity.
  • Keywords
    CMOS integrated circuits; bridge circuits; carbon compounds; catalysts; chemical variables measurement; electric potential; electric resistance; electrodes; gas sensors; iron compounds; magnetic materials; magnetic sensors; microfabrication; microsensors; sol-gel processing; solenoids; tin compounds; CO; CO concentration measurement; CO gas chamber; DC bias circuit; Fe3O4-SnO2; ambient temperature; bridge sensing circuit; chemical microsensor; drift behavior; heating; magnetic catalytic sensing mechanism; magnetic enhanced CMOS MEMS compatible gas sensor; magnetic field; magnetic field generator; magnetic sensing material; mesh stacked sensing electrodes; microfabrication; power dissipation; pulse sampling scheme; pulse type bias; resistance; sensing current flow; signal reading scheme; size 0.35 mum; sol-gel deposition process; solenoid coil; voltage drop; Electrodes; Gas detectors; Magnetic fields; Materials; Resistance; Sensitivity; CMOS-MEMS; Fe3O4; Gas sensor; Magnetic-Catalyst; SnO2;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    TENCON 2013 - 2013 IEEE Region 10 Conference (31194)
  • Conference_Location
    Xi´an
  • ISSN
    2159-3442
  • Print_ISBN
    978-1-4799-2825-5
  • Type

    conf

  • DOI
    10.1109/TENCON.2013.6719033
  • Filename
    6719033