• DocumentCode
    1358954
  • Title

    Charge recycling differential logic (CRDL) for low power application

  • Author

    Kong, Bai-Sun ; Choi, Joo-Sun ; Lee, Seog-Jun ; Lee, Kwyro

  • Author_Institution
    LG Semicon Co. Ltd., Seoul, South Korea
  • Volume
    31
  • Issue
    9
  • fYear
    1996
  • fDate
    9/1/1996 12:00:00 AM
  • Firstpage
    1267
  • Lastpage
    1276
  • Abstract
    A novel logic family, called charge recycling differential logic (CRDL), has been proposed and analyzed. CRDL reduces power consumption by utilizing a charge recycling technique with the speed comparable to those of conventional dynamic logic circuits. It has an additional benefit of improved noise margin due to inherently static operation. The noise margin problem of true single-phase-clock latch (TSPC) is also eliminated when a CRDL logic circuit is connected to it. Two swing-suppressed-input latches (SSILs), which are introduced for use with CRDL, have better performance than the conventional transmission gate latch. Moreover, a pipeline configuration with CRDL in a true two-phase clocking scheme shows completely race-free operation with no constraints on logic composition. Eight-bit Manchester carry chains and full adders were fabricated using a 0.8 μm single-poly double-metal n-well CMOS technology to verify the relative performance of the proposed logic family. The measurement results indicate that about 16-48% improvements in power-delay product are obtained compared with differential cascode voltage switch (DCVS) logic
  • Keywords
    CMOS logic circuits; VLSI; adders; carry logic; clocks; flip-flops; integrated circuit design; integrated circuit noise; pipeline arithmetic; 0.8 micron; Manchester carry chains; adders; charge recycling differential logic; logic composition; low power application; noise margin; pipeline configuration; power consumption; power-delay product; race-free operation; single-poly double-metal n-well CMOS technology; static operation; swing-suppressed-input latches; true single-phase-clock latch; CMOS logic circuits; CMOS technology; Circuit noise; Clocks; Energy consumption; Latches; Logic circuits; Pipelines; Recycling; Switches;
  • fLanguage
    English
  • Journal_Title
    Solid-State Circuits, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0018-9200
  • Type

    jour

  • DOI
    10.1109/4.535410
  • Filename
    535410