Electrochemical Investigations of Electronically Conductive Polymers. VII. Charge-Transport in Lightly-Doped Polypyrrole.

Abstract

We have shown that the mechanism and rate of charge transport in polypyrrole films (on electrode surface) depend on whether the polymer is in its electronically conductive or electronically insulating state. This paper focuses on the mechanism and rate of charge transport in the electronically insulating state; i.e. we describe results of electrochemical investigations of polypyrrole films which were equilibrated at initial potentials negative of -0.30 V vs. SCE. With regard to mechanism of charge transport, we show that this lightly doped material behaves like a redox polymer. In particular, we show that like other redox polymers, redox reactions for lightly doped polypyrrole begin at the polymer/electrode interface and propagate to the polymer/solution interface. With regard to rate of charge transport, we show that apparent diffusion coefficients for polypyrrole synthesized from acetonitrile solutions containing 2% added water are significantly lower than charge transport rates in films synthesized in rigorously-dried acetonitrile. Finally, we report exchange current densities associated with the oxidation of lightly doped polypyrrole. These exchange current densities are on the order of 4 mA cm to the -2 power, indicating relatively facile electron transfer kinetics.

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Document Details

Document Type
Technical Report
Publication Date
Sep 13, 1991
Accession Number
ADA240927

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  • Charles R. Martin
  • Zhihau Cai

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  • Colorado State University

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