• DocumentCode
    1278450
  • Title

    A Bipolar Vacuum Microelectronic Device

  • Author

    Stoner, Brian R. ; Piascik, Jeffrey R. ; Gilchrist, Kristin Hedgepath ; Parker, Charles B. ; Glass, Jeffrey T.

  • Author_Institution
    Center for Mater. & Electron. Technol., RTI Int., Research Triangle Park, NC, USA
  • Volume
    58
  • Issue
    9
  • fYear
    2011
  • Firstpage
    3189
  • Lastpage
    3194
  • Abstract
    This report provides the first demonstration of a vacuum microelectronic device that utilizes both positive and negative charge states (i.e., a bipolar vacuum microelectronic device), thus enabling the possibility of device designs that are not previously possible in traditional vacuum microelectronics. In the same way that complimentary metal-oxide-semiconductor (complimentary n-channel MOS and p-channel MOS) were required in solid-state electronics before digital logic applications could be addressed, vacuum microelectronic devices benefit from a second charge state to realize many applications. This advance could enable integrated circuits for radiation-intensive environments (nuclear power facilities and space-based communications such as satellites) and high-temperature applications (engines and materials processing). A microelectromechanical systems platform was used to construct pentode structures with integrated carbon nanotube field emitters for electron emission and bias electrodes for separate electron- and ion-current modulation. Ions were generated via electron impact in an argon ambient, and devices were tested in both voltage sweep and pulsed modes. Current that is greater than 2 mA/cm2 was modulated at the anode between ion and electron collection, demonstrating that this novel platform has the potential to foster a new class of bipolar vacuum microelectronics.
  • Keywords
    MIS devices; carbon nanotubes; electron emission; micromechanical devices; bias electrodes; bipolar vacuum microelectronic device; carbon nanotube field emitters; complimentary metal-oxide-semiconductor; digital logic applications; electron emission; electron-current modulation; ion-current modulation; microelectromechanical systems platform; radiation-intensive environments; solid-state electronics; Anodes; Cathodes; Ionization; Materials; Microelectronics; Bipolar transistors; electron emission; field emitter; ion sources; microelectromechanical systems;
  • fLanguage
    English
  • Journal_Title
    Electron Devices, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9383
  • Type

    jour

  • DOI
    10.1109/TED.2011.2157930
  • Filename
    5959196