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True single-phase adiabatic circuitry

Published: 01 February 2001 Publication History

Abstract

Dynamic logic families that rely on energy recovery to achieve low energy dissipation control the flow of data through gate cascades using multiphase clocks. Consequently, they typically use multiple clock generators and can exhibit increased energy consumption on their clock distribution networks. Moreover, they are not attractive for high-speed design due to their high complexity and clock skew management problems. In this paper, we present TSEL, the first energy-recovering (a.k.a. adiabatic) logic family that operates with a single-phase sinusoidal clocking scheme. We also present SCAL, a source-coupled variant of TSEL with improved supply voltage scalability and energy efficiency. Optimal performance under any operating conditions is achieved in SCAL using a tunable current source in each gate. TSEL and SCAL outperform previous adiabatic logic families in terms of energy efficiency and operating speed. In layout-based simulations with 0.5 /spl mu/m standard CMOS process parameters, 8-bit carry-lookahead adders (CLAs) in TSEL and SCAL function correctly for operating frequencies exceeding 200 MHz. In comparison with corresponding CLAs in alternative logic styles that operate at minimum supply voltages, CLAs designed in our single-phase adiabatic logic families are more energy efficient across a broad range of operating frequencies. Specifically, for clock rates ranging from 10 to 200 MHz, our andbit SCAL CLAs are 1.5 to 2.5 times more energy efficient than corresponding adders developed in PAL and 2N2P and 2.0 to 5.0 times less dissipative than their purely combinational or pipelined CMOS counterparts.

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Published In

cover image IEEE Transactions on Very Large Scale Integration (VLSI) Systems
IEEE Transactions on Very Large Scale Integration (VLSI) Systems  Volume 9, Issue 1
Special issue on low power electronics and design
Feb. 2001
252 pages
ISSN:1063-8210
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IEEE Educational Activities Department

United States

Publication History

Published: 01 February 2001

Author Tags

  1. adiabatic circuits
  2. carry-lookahead adder
  3. dynamic circuits
  4. energy recovery logic
  5. low-energy computing
  6. true single-phase clocking

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  • (2021)Clock Aligned Input Adiabatic LogicMicroelectronics Journal10.1016/j.mejo.2021.105122114:COnline publication date: 1-Aug-2021
  • (2018)Design and Analysis of Power Efficient Binary Content Addressable Memory (PEBCAM) Core CellsCircuits, Systems, and Signal Processing10.1007/s00034-017-0628-037:4(1422-1451)Online publication date: 1-Apr-2018
  • (2009)Implementing multiphase resonant clocking on a finite-impulse response filterIEEE Transactions on Very Large Scale Integration (VLSI) Systems10.1109/TVLSI.2008.200647717:11(1593-1601)Online publication date: 1-Nov-2009
  • (2006)Elmore model for energy estimation in RC treesProceedings of the 43rd annual Design Automation Conference10.1145/1146909.1147154(965-970)Online publication date: 24-Jul-2006
  • (2006)A CMOS compatible charge recovery logic family for low supply voltagesProceedings of the 16th international conference on Integrated Circuit and System Design: power and Timing Modeling, Optimization and Simulation10.1007/11847083_55(563-572)Online publication date: 13-Sep-2006
  • (2005)Implementation of a simple 8-bit microprocessor with reversible energy recovery logicProceedings of the 2nd conference on Computing frontiers10.1145/1062261.1062332(421-426)Online publication date: 4-May-2005
  • (2004)On optimality of adiabatic switching in MOS energy-recovery circuitProceedings of the 2004 international symposium on Low power electronics and design10.1145/1013235.1013316(332-337)Online publication date: 9-Aug-2004
  • (2004)On optimality of adiabatic switching in MOS energy-recovery circuitProceedings of the 2004 international symposium on Low power electronics and design10.1145/1013235.1013295(236-239)Online publication date: 9-Aug-2004
  • (2004)Ultralow-power adiabatic circuit semi-custom designIEEE Transactions on Very Large Scale Integration (VLSI) Systems10.1109/TVLSI.2004.83632012:11(1248-1253)Online publication date: 1-Nov-2004
  • (2003)A true single-phase energy-recovery multiplierIEEE Transactions on Very Large Scale Integration (VLSI) Systems10.1109/TVLSI.2003.81079511:2(194-207)Online publication date: 1-Apr-2003
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