DocumentCode :
1511932
Title :
Energy-Efficient Low-Latency 600 MHz FIR With High-Overdrive Charge-Recovery Logic
Author :
Kao, Jerry C. ; Ma, Wei-Hsiang ; Sathe, Visvesh S. ; Papaefthymiou, Marios
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., Univ. of Michigan, Ann Arbor, MI, USA
Volume :
20
Issue :
6
fYear :
2012
fDate :
6/1/2012 12:00:00 AM
Firstpage :
977
Lastpage :
988
Abstract :
This paper presents a 14-tap 8-bit finite impulse response (FIR) test-chip that has been designed using a novel charge-recovery logic family, called Enhanced Boost Logic (EBL), to achieve high-speed and low-power operation. Compared to previous charge-recovery circuitry, EBL achieves increased gate overdrive, resulting in low latency overhead over static CMOS design. The EBL-based FIR has been designed with only 1.5 cycles of additional latency over its static CMOS counterpart, while consuming 21% less energy per cycle, based on post-layout simulations of the two designs. The test-chip has been fabricated in a 0.13 μ m CMOS process with a fully-integrated 3 nH inductor. Correct function has been validated in the 365-600 MHz range. At its resonant frequency of 466 MHz, the test-chip dissipates 39.1 mW with a 93.6 nW/MHz/Tap/InBit/CoeffBit figure of merit, recovering 45% of the energy supplied to it every cycle.
Keywords :
CMOS logic circuits; FIR filters; logic circuits; logic design; low-power electronics; EBL-based FIR; FIR test-chip; additional latency; charge-recovery circuitry; charge-recovery logic family; energy-efficient low-latency; enhanced boost logic; figure of merit; finite impulse response test-chip; frequency 365 MHz to 600 MHz; frequency 466 MHz; frequency 600 MHz; fully-integrated inductor; gate overdrive; high-overdrive charge-recovery logic; high-speed operation; low-power operation; post-layout simulations; power 39.1 mW; resonant frequency; static CMOS counterpart; static CMOS design; CMOS integrated circuits; Clocks; Finite impulse response filter; Generators; Logic gates; MOS devices; Switches; Digital signal processing (DSP); low-power VLSI;
fLanguage :
English
Journal_Title :
Very Large Scale Integration (VLSI) Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
1063-8210
Type :
jour
DOI :
10.1109/TVLSI.2011.2140346
Filename :
5764852
Link To Document :
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