• DocumentCode
    1114688
  • Title

    Submicrometer-channel CMOS for low-temperature operation

  • Author

    Sun, Jack Yuan-Chen ; Taur, Yuan ; Dennard, Robert H. ; Klepner, Stephen P.

  • Author_Institution
    IBM Thomas J. Watson Research Center, Yorktown Heights, NY
  • Volume
    34
  • Issue
    1
  • fYear
    1987
  • fDate
    1/1/1987 12:00:00 AM
  • Firstpage
    19
  • Lastpage
    27
  • Abstract
    A 0.5-µm-channel CMOS design optimized for liquid-nitrogen temperature operation is described. Thin gate oxide (12.5 nm) and dual polysilicon work functions (n+-poly gate for n-channel and p+-poly for p-channel transistors) are used. The power supply voltage is chosen to be 2.5 V based on performance, hot-carrier effects, and power dissipation considerations. The doping profiles of the channel and the background (substrate or well) are chosen to optimize the mobility, substrate sensitivity, and junction capacitance with minimum process complexity. The reduced supply voltage enables the use of silicided shallow arsenic and boron junctions, without any intentional junction grading, to control short-channel effects and to reduce the parasitic series resistance at 77 K. The same self-aligned silicide over the polysilicon gate electrode reduces the sheet resistance (as low as 1 Ω/sq at 77 K) and provides the strapping between the gates of the complementary transistors. The design has been demonstrated by a simple n-well/p-substrate CMOS process with very good device characteristics and ring-oscillator performance at 77 K.
  • Keywords
    Boron; Design optimization; Doping profiles; Hot carrier effects; Parasitic capacitance; Power dissipation; Power supplies; Silicides; Temperature; Voltage control;
  • fLanguage
    English
  • Journal_Title
    Electron Devices, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9383
  • Type

    jour

  • DOI
    10.1109/T-ED.1987.22881
  • Filename
    1486592