Probing Heterogeneous Electron Transfer at an Unbiased Conductor by Scanning Electrochemical Microscopy in the Feedback Mode
- 7 March 2007
- journal article
- research article
- Published by American Chemical Society (ACS) in Analytical Chemistry
- Vol. 79 (7) , 2735-2744
- https://doi.org/10.1021/ac062089i
Abstract
The theory of the feedback mode of scanning electrochemical microscopy is extended for probing heterogeneous electron transfer at an unbiased conductor. A steady-state SECM diffusion problem with a pair of disk ultramicroelectrodes as a tip and a substrate is solved numerically. The potential of the unbiased substrate is such that the net current flow across the substrate/solution interface is zero. For a reversible substrate reaction, the potential and the corresponding tip current depend on SECM geometries with respective to the tip radius including not only the tip−substrate distance and the substrate radius but also the thickness of the insulating sheath surrounding the tip. A larger feedback current is obtained using a probe with a thinner insulating sheath, enabling identification of a smaller unbiased substrate with a radius that is approximately as small as the tip radius. An intrinsically slow reaction at an unbiased substrate as driven by a SECM probe can be quasi-reversible. The standard rate constant of the substrate reaction can be determined from the feedback tip current when the SECM geometries are known. The numerical simulations are extended to an SECM line scan above an unbiased substrate to demonstrate a “dip” in the steady-state tip current above the substrate center. The theoretical predictions are confirmed experimentally for reversible and quasi-reversible reactions at an unbiased disk substrate using disk probes with different tip radii and outer radii.Keywords
This publication has 33 references indexed in Scilit:
- Scanning Electrochemical Microscopy Investigations of Monolayers Bound to p-Type Silicon SubstratesAnalytical Chemistry, 2006
- Resolving Electron Transfer Kinetics at the Nanocrystal/Solution InterfaceJournal of the American Chemical Society, 2006
- Local Feedback Mode of Scanning Electrochemical Microscopy for Electrochemical Characterization of One-Dimensional Nanostructure: Theory and Experiment with Nanoband Electrode as Model SubstrateAnalytical Chemistry, 2006
- Distinction of the Two Phases of CuTCNQ by Scanning Electrochemical MicroscopyAnalytical Chemistry, 2005
- Scanning Electrochemical Microscopy #54. Application To The Study Of Heterogeneous Catalytic ReactionsHydrogen Peroxide DecompositionThe Journal of Physical Chemistry B, 2005
- Theory of scanning electrochemical microscopy (SECM) as a probe of surface conductivityPhysical Chemistry Chemical Physics, 2004
- Measurement of Lateral Charge Propagation in [Os(bpy)2(PVP)nCl]Cl Thin Films: A Scanning Electrochemical Microscopy ApproachThe Journal of Physical Chemistry B, 2004
- Voltammetry Retrospective.Analytical Chemistry, 2000
- Probing the Coupling of Charge-Transfer Processes Across Liquid/Liquid Interfaces by the Scanning Electrochemical MicroscopeThe Journal of Physical Chemistry B, 2000
- Scanning electrochemical microscopy: beyond the solid/liquid interfaceAnalytica Chimica Acta, 1999