DocumentCode :
76671
Title :
Heat Dissipation in Nanocomputing: Lower Bounds From Physical Information Theory
Author :
Ercan, Ilke ; Anderson, N.G.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Massachusetts Amherst, Amherst, MA, USA
Volume :
12
Issue :
6
fYear :
2013
fDate :
Nov. 2013
Firstpage :
1047
Lastpage :
1060
Abstract :
Computing circuits that irreversibly discard information unavoidably dissipate heat. Dissipative costs resulting from information loss, while insignificant in CMOS technology, may be dominant or even prohibitive in some dense, high-speed post-CMOS nanocomputing circuits that employ logically irreversible operations. In transistor-based paradigms, dissipation costs associated with logical irreversibility may be supplemented by additional unavoidable costs associated with particle supply required to maintain the computational “working substance.” These considerations motivate determination of fundamental lower bounds on the dissipative cost of computation that can be applied to concrete nanocomputing technology proposals. In this paper, we present a methodology for the determination of such bounds and illustrate its application to half-adder circuits implemented in the quantum cellular automata and nano-wire-based nano-application specific-integrated circuit paradigms. The resulting bounds reflect fundamental costs inherent in the underlying computational strategies employed by these circuits. Prospective use of this methodology as an assessment tool for post-CMOS nanocomputing technology proposals is discussed.
Keywords :
CMOS integrated circuits; adders; application specific integrated circuits; cellular automata; cooling; nanoelectronics; nanowires; quantum computing; half-adder circuits; heat dissipation; nanowire-based nano-application specific-integrated circuit paradigms; physical information theory; post-CMOS nanocomputing technology; quantum cellular automata; Adders; Clocks; Heat sinks; Heating; Process control; Proposals; Reservoirs; Energy dissipation; information entropy; nanoelectronics; power dissipation;
fLanguage :
English
Journal_Title :
Nanotechnology, IEEE Transactions on
Publisher :
ieee
ISSN :
1536-125X
Type :
jour
DOI :
10.1109/TNANO.2013.2276938
Filename :
6576289
Link To Document :
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