Redox-executed logic operations through the reversible voltammetric response characteristics of electroactive self-assembled monolayers

Ganga Periyasamy, R. D. Levine, F. Remacle

Research output: Contribution to journalArticlepeer-review

5 Scopus citations

Abstract

We propose charge quantization in electrochemical oxidationreduction (redox) systems as a route to performing logical operations efficiently and reversibly. The theory is based on the interfacial potential distribution for electrodes coated with electroactive self-assembled molecular films. We monitor the change in the oxidation number by studying the current as a function of the working and reference electrode potentials and of the temperature. Diamond-shaped regions can be defined that delineate the stability of a given redox species as a function of the applied and reference potentials. Using these electrochemical Coulomb diamonds, we then show the principles for the design of a complete set of binary gates and a finite-state set-reset machine. We demonstrate the analogies between these redox systems and nanoscale solid-state systems where the charging energy is finite. Redox systems allow simple logic operations at room temperature because typically the standard potential is higher than the thermal energy.

Original languageEnglish
Pages (from-to)173-183
Number of pages11
JournalAustralian Journal of Chemistry
Volume63
Issue number2
DOIs
StatePublished - 2010

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