• DocumentCode
    2031499
  • Title

    Variation-tolerant ultra low-power heterojunction tunnel FET SRAM design

  • Author

    Saripalli, Vinay ; Datta, Suman ; Narayanan, Vijaykrishnan ; Kulkarni, Jaydeep P.

  • Author_Institution
    Dept. of Comput. Sci. & Eng., Pennsylvania State Univ., University Park, PA, USA
  • fYear
    2011
  • fDate
    8-9 June 2011
  • Firstpage
    45
  • Lastpage
    52
  • Abstract
    Steep sub-threshold Interband Tunnel FETs (TFETs) are promising candidates for low supply voltage applications with higher switching performance than traditional CMOS. Unlike CMOS, TFETs exhibit uni-directional conduction due to their asymmetric source-drain architecture, and delayed output saturation characteristics. These unconventional characteristics of TFETs pose a challenge for providing good read/write noise margin characteristics in TFET SRAMs. We provide an analysis of 8T and 10T TFET SRAM cells, including Schmitt-Trigger (ST) based cells, to address these shortcomings. By benchmarking a variety of TFET-based SRAM cells, we show the utility of the Schmitt-Trigger feedback mechanism in improving the read/write noise margins, thus enabling ultra low-VCC operation for TFET SRAMs. We also propose a variation model for studying the impact of device-level variation on TFET SRAM cells. We show that the TFET ST SRAM cell has sufficient variation tolerance to operate at low-VCC, and is a very promising cell to achieve a VCC-min of 124mV. The TFET ST cell operating at its VCC-min provides a 1.2x reduction in dynamic energy and 13x reduction in leakage power compared to the best CMOS-based SRAM implementation operating at it´s VCC-min, while giving better performance at the same time.
  • Keywords
    CMOS integrated circuits; SRAM chips; field effect transistors; low-power electronics; power aware computing; trigger circuits; Schmitt-Trigger feedback mechanism; low supply voltage applications; uni-directional conduction; variation-tolerant ultra low-power heterojunction tunnel FET SRAM design; voltage 124 mV; CMOS integrated circuits; FinFETs; Logic gates; Noise; Random access memory; Silicon;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Nanoscale Architectures (NANOARCH), 2011 IEEE/ACM International Symposium on
  • Conference_Location
    San Diego, CA
  • Print_ISBN
    978-1-4577-0993-7
  • Type

    conf

  • DOI
    10.1109/NANOARCH.2011.5941482
  • Filename
    5941482