DocumentCode
870388
Title
Nanocell logic gates for molecular computing
Author
Tour, James M. ; Van Zandt, William L. ; Husband, Christopher P. ; Husband, Summer M. ; Wilson, Lauren S. ; Franzon, Paul D. ; Nackashi, David P.
Author_Institution
Center for Nanoscale Sci. & Technol., Rice Univ., Houston, TX, USA
Volume
1
Issue
2
fYear
2002
fDate
6/1/2002 12:00:00 AM
Firstpage
100
Lastpage
109
Abstract
Molecular electronics seeks to build electrical devices to implement computation - logic and memory - using individual or small collections of molecules. These devices have the potential to reduce device size and fabrication costs, by several orders of magnitude, relative to conventional CMOS. However, the construction of a practical molecular computer will require the molecular switches and their related interconnect technologies to behave as large-scale diverse logic, with input/output wires scaled to molecular dimensions. It is unclear whether it is necessary or even. possible to control the precise regular placement and interconnection of these diminutive molecular systems. This paper describes genetic algorithm-based simulations of molecular device structures in a nanocell where placement and connectivity of the internal molecular switches are not specifically directed and the internal topology is generally disordered. With some simplifying assumptions, these results show that it is possible to use easily fabricated nanocells as logic devices by setting the internal molecular switch states after the topological molecular assembly is complete. Simulated logic devices include an inverter, a NAND gate, an XOR gate and a 1-bit adder. Issues of defect and fault tolerance are addressed.
Keywords
adders; fault tolerant computing; genetic algorithms; logic gates; logic simulation; molecular electronics; nanoelectronics; NAND gate; XOR gate; adder; circuit simulation; defect tolerance; fault tolerance; genetic algorithm; interconnect technology; inverter; molecular computing; molecular electronics; molecular switch; nanocell logic gate; CMOS logic circuits; CMOS technology; Costs; Fabrication; Logic devices; Logic gates; Molecular computing; Molecular electronics; Nanoscale devices; Switches;
fLanguage
English
Journal_Title
Nanotechnology, IEEE Transactions on
Publisher
ieee
ISSN
1536-125X
Type
jour
DOI
10.1109/TNANO.2002.804744
Filename
1049647
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