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Diffusion-limited chronoamperometry at conical-tip microelectrodes

journal contribution
posted on 2017-12-06, 00:00 authored by D Britz, Shaneel ChandraShaneel Chandra, J Strutwolf, D Wong
In this paper, we present simulated diffusion-limited time-variant currents at conical-tip microelectrodes fabricated by depositing a carbon film in and on pulled quartz capillaries. These mechanically strong microelectrodes are suitable probes for detecting neurotransmitters in vivo. The simulated results show that the currents obtained at conical-tip microelectrodes are larger than those at finite conical microelectrodes (e.g. etched carbon fibres protruding from an insulating plane) of comparable dimensions.The currents at conical-tip microelectrodes and finite conical microelectrodes both converge to that of a microdisk electrode at small cone heights and large cone angles, and to that of a cylindrical electrode portion of equal length and half the radius at large cone heights and small cone angles. At short times (scaled by the electrode dimensions), Cottrellian current is achieved at conical-tip microelectrodes and the current densities collapse to the expected chronoamperometric response at a microdisk electrode, subject to some simulation errors. Comparison between a simulated chronoamperogram and an experimental chronoamperogram then allows an estimate of parameters (such as electrode surface area and dimensions) that define the electrode geometry. Steady-state currents based on empirical functions have also been computed for conical-tip microelectrodes and finite conical microelectrodes.

Funding

Category 1 - Australian Competitive Grants (this includes ARC, NHMRC)

History

Volume

55

Issue

3

Start Page

1272

End Page

1277

Number of Pages

6

eISSN

1873-3859

ISSN

0013-4686

Location

United Kingdom

Publisher

Pergamon Press

Language

en-aus

Peer Reviewed

  • Yes

Open Access

  • No

External Author Affiliations

Aarhus universitet; Macquarie University; Not affiliated to a Research Institute; Tyndall National Institute;

Era Eligible

  • No

Journal

Electrochimica acta.