• DocumentCode
    2982802
  • Title

    Performance Analysis of Germanium Nanowire Tunneling Field Effect Transistors

  • Author

    Jain, N. ; Tutuc, E. ; Banerjee, S.K. ; Register, L.F.

  • Author_Institution
    Microelectron. Res. Center, Univ. of Texas at Austin, Austin, TX
  • fYear
    2008
  • fDate
    23-25 June 2008
  • Firstpage
    99
  • Lastpage
    100
  • Abstract
    Tunneling field effect transistors (FET), consisting of gate tunable p-i-n (p-type-intrinsic-n-type) device structures, represent an attractive and realistic paradigm that can potentially provide relief to the increasing power dissipation in high performance electronic applications. Such devices possess a subthreshold slope (SS) smaller than the thermally limited 60 mV/decade, but also can suffer from ambipolar device characteristics and an ON-state current significantly smaller than that of conventional metal-oxide-semiconductor FETs. In this paper, we simulate the device performance of germanium p-i-n tunneling field effect transistors in the single (SG), double (DG), and nanowire gate-all-around (GAA) geometry. Two key conclusions can be drawn from the results presented here: (1) the ambipolar device characteristics can be completely suppressed by using a source and drain with different doping levels, and (2) the devices realized in the nanowire gate-all-around geometry possess an ON-state current significantly higher than their planar counterparts thanks to their superior electrostatic properties. The simulations were done using Sentaurus Device (copySynopsis), and using Hurkx´s model for band-to-band tunneling.
  • Keywords
    MOSFET; electrostatic devices; elemental semiconductors; germanium; nanowires; semiconductor quantum wires; Ge; Sentaurus Device; ambipolar device characteristics; band-to-band tunneling; electrostatic properties; high performance electronic applications; metal-oxide-semiconductor FET; nanowire tunneling field effect transistors; power dissipation; subthreshold slope; Doping; Double-gate FETs; Geometry; Germanium; Nanoscale devices; PIN photodiodes; Performance analysis; Power dissipation; Solid modeling; Tunneling;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Device Research Conference, 2008
  • Conference_Location
    Santa Barbara, CA
  • ISSN
    1548-3770
  • Print_ISBN
    978-1-4244-1942-5
  • Electronic_ISBN
    1548-3770
  • Type

    conf

  • DOI
    10.1109/DRC.2008.4800753
  • Filename
    4800753