Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
4908235 | Journal of Electroanalytical Chemistry | 2016 | 32 Pages |
Abstract
A powerful theoretical approach to solve electrochemical reaction-diffusion problems with fast homogeneous kinetics is applied to obtain expressions for the transient current-potential-time response of a number of reaction mechanisms at microelectrodes of very different shapes, also applicable to ion transfer processes at liquid | liquid microinterfaces. The steady state response can be obtained as a limit when the characteristic dimension of the microelectrode tends to zero. Also, expressions under total chemical equilibrium conditions are derived when the linear reaction layer vanishes. The physico-chemical principles are based on suitable definitions of the so-called linear diffusion and reaction layers, which take into account the influence of the geometry of the diffusion field. The results presented fall within the so-called “kinetic steady state” and “diffusive-kinetic steady state” approaches and also give insight into the magnitude and extent of the perturbation of the chemical equilibrium conditions near the electrode surface as a consequence of the charge transfer process.
Keywords
Related Topics
Physical Sciences and Engineering
Chemical Engineering
Chemical Engineering (General)
Authors
Angela Molina, JoaquÃn González, Eduardo Laborda, Richard G. Compton,