• DocumentCode
    3157092
  • Title

    Stability enhancement techniques for nanoscale SRAM circuits: A comparison

  • Author

    Tawfik, Sherif A. ; Kursun, Volkan

  • Author_Institution
    Dept. of Electr. & Comput. Eng., Univ. of Wisconsin-Madison, Madison, WI
  • Volume
    01
  • fYear
    2008
  • fDate
    24-25 Nov. 2008
  • Abstract
    Four circuit techniques for high data stability and low leakage power consumption in static CMOS memory circuits are compared in this paper. The techniques that provide the highest data stability, the lowest leakage power consumption, and the smallest memory cell area are identified. The first circuit technique employs a dynamic voltage swing wordline driver to control the operation of the standard six-transistor (6 T) memory cells. The wordline voltage swing is dynamically tuned during read and write operations in order to simultaneously enhance the read stability and the write margin without increasing the size of the transistors in the SRAM cell. The other three circuit techniques tackle the data stability challenge by modifying the memory cell circuit structure. A nine-transistor (9 T), an eighttransistor (8 T), and a dual-threshold-voltage (dual-Vt) seven-transistor (7 T) SRAM circuit are considered in this paper. The data storage nodes are isolated from the bitlines with these techniques, thereby significantly enhancing the read stability as compared to the standard 6 T SRAM circuits. Among the evaluated memory circuits, the 9 T and the 8 T SRAM cells provide the highest data stability during a read operation. The read stability of the 9 T and the 8 T SRAM cells is 80% higher as compared to a standard 6T SRAM cell sized for data stability (with beta = 3) in a 65 nm CMOS technology. Alternatively, the dynamic wordline voltage swing technique offers the smallest area and the dual-Vt 7 T SRAM cell consumes the lowest leakage power among the evaluated memory cells.
  • Keywords
    CMOS integrated circuits; SRAM chips; circuit tuning; nanoelectronics; transistor circuits; data stability; dual-threshold-voltage seven-transistor SRAM circuit; dynamic voltage swing wordline driver; eight-transistor memory cell; leakage power consumption; memory cell circuit structure; nanoscale SRAM circuits; nine-transistor memory cell; six-transistor memory cells; static CMOS memory circuits; tuning; CMOS memory circuits; CMOS technology; Circuit stability; Data engineering; Driver circuits; Energy consumption; Power engineering computing; Random access memory; Read-write memory; Voltage;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    SoC Design Conference, 2008. ISOCC '08. International
  • Conference_Location
    Busan
  • Print_ISBN
    978-1-4244-2598-3
  • Electronic_ISBN
    978-1-4244-2599-0
  • Type

    conf

  • DOI
    10.1109/SOCDC.2008.4815586
  • Filename
    4815586