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Adaptive finite element methods in electrochemistry.

Abstract:
In this article, we review some of our previous work that considers the general problem of numerical simulation of the currents at microelectrodes using an adaptive finite element approach. Microelectrodes typically consist of an electrode embedded (or recessed) in an insulating material. For all such electrodes, numerical simulation is made difficult by the presence of a boundary singularity at the electrode edge (where the electrode meets the insulator), manifested by the large increase in the current density at this point, often referred to as the edge effect. Our approach to overcoming this problem has involved the derivation of an a posteriori bound on the error in the numerical approximation for the current that can be used to drive an adaptive mesh-generation algorithm, allowing calculation of the quantity of interest (the current) to within a prescribed tolerance. We illustrate the generic applicability of the approach by considering a broad range of steady-state applications of the technique.

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Publisher copy:
10.1021/la061158l

Authors


More by this author
Institution:
University of Oxford
Division:
MPLS
Department:
Mathematical Institute
Role:
Author


Journal:
Langmuir More from this journal
Volume:
22
Issue:
25
Pages:
10666-10682
Publication date:
2006-12-05
DOI:
EISSN:
1520-5827
ISSN:
0743-7463


Language:
English
Pubs id:
pubs:131395
UUID:
uuid:480eb93b-b0e8-4e77-9f73-3394eb6a70a3
Local pid:
pubs:131395
Source identifiers:
131395
Deposit date:
2012-12-19

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