DocumentCode
1391609
Title
Signal processing with near-neighbor-coupled time-varying quantum-dot arrays
Author
Csurgay, Árpád I. ; Porod, Wolfgang ; Lent, Craig S.
Author_Institution
Center for Nano Sci. & Technol., Notre Dame Univ., IN, USA
Volume
47
Issue
8
fYear
2000
fDate
8/1/2000 12:00:00 AM
Firstpage
1212
Lastpage
1223
Abstract
The Nano-Devices Group at the University of Notre Dame proposed a new device that encodes information in the geometrical charge distribution of artificial (or natural) molecules. Functional units are composed by electrostatic coupling. In these units, processing takes place by reshaping the electron density of the molecules, and not by switching currents. Signal processing potential of next-neighbor-coupled cellular nonlinear networks (CNNs) has been recently explored with the conclusion that local-activity of the cells is necessary to exhibit complexity. It will be shown that Coulomb-coupled time-invariant artificial molecules behave like nonlinear locally passive devices, thus signal-power-gain or multiple equilibria cannot be achieved by integrating them. However, the signal input-output relation of strongly nonlinear molecules can be varied in time by adiabatic pumping, called clock control. It will be shown that strongly nonlinear time-varying molecules can transform the necessary amount of clock energy into the signal flow, thereby enabling the network of molecules to perform signal processing
Keywords
Coulomb blockade; cellular automata; electron density; nanotechnology; resonant tunnelling devices; semiconductor quantum dots; tunnelling; Coulomb-coupled time-invariant artificial molecules; adiabatic pumping; clock control; electron density; electrostatic coupling; geometrical charge distribution; near-neighbor-coupled time-varying quantum-dot arrays; next-neighbor-coupled cellular nonlinear networks; signal flow; signal input-output relation; signal processing; strongly nonlinear molecules; Array signal processing; Clocks; Coupling circuits; Electrons; Electrostatics; Nanoscale devices; Nonlinear equations; Physics; Quantum dots; Signal processing;
fLanguage
English
Journal_Title
Circuits and Systems I: Fundamental Theory and Applications, IEEE Transactions on
Publisher
ieee
ISSN
1057-7122
Type
jour
DOI
10.1109/81.873875
Filename
873875
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