DocumentCode
978943
Title
The Dependence of Spectral Impedance on Disc Microelectrode Radius
Author
Ahuja, Ashish K. ; Behrend, Matthew R. ; Whalen, John J., III ; Humayun, Mark S. ; Weiland, James D.
Author_Institution
Univ. of Southern California, Los Angeles
Volume
55
Issue
4
fYear
2008
fDate
4/1/2008 12:00:00 AM
Firstpage
1457
Lastpage
1460
Abstract
As microelectrodes gain widespread use for electrochemical sensing, biopotential recording, and neural stimulation, it becomes important to understand the dependence of electrochemical impedance on microelectrode size. It has been shown mathematically that a disc electrode, coplanar in an insulating substrate and exposed to a conducting media, exhibits an inhomogeneous current distribution when a potential step is applied. This distribution is known as the primary distribution, and its derivation also yielded an analytic solution for electrical resistance of the conducting media (Rs), between the disc surface and a distant ground, which is inversely proportional to disk radius [Rs = 1/(4Kr), where k is media conductivity and r is disk radius]. The dependence of spectral impedance on microelectrode radius, however, has not been explored. We verify the analytical solution for resistance using high-frequency (100 kHz) electrochemical impedance data from microelectrodes of varying radius (11-325 mum). For all disc radii, as we approach a lower frequency (rarr 10 Hz), we observe a transition from radial to area dependence (e.g., 1/r rarr 1/r2). We hypothesize that this transition is driven by the fact that the derivation of the primary distribution ignores concentration gradients, but that these gradients cannot be ignored at lower frequencies.
Keywords
biomedical electrodes; current distribution; electric resistance; electrochemical electrodes; electrochemical impedance spectroscopy; electrochemical sensors; microelectrodes; biopotential recording; conducting media; disc microelectrode radius; electrical resistance; electrochemical impedance; electrochemical sensing; frequency 100 kHz; impedance spectroscopy; inhomogeneous current distribution; neural stimulation; radius 11 mum to 325 mum; spectral impedance; Conductivity; Current distribution; Electric resistance; Electrodes; Frequency; Impedance; Insulation; Microelectrodes; Nonhomogeneous media; Surface resistance; Electrochemical sensing; Primary current distribution; electrochemical impedance spectroscopy; impedance spectroscopy; microelectrode; neural stimulation; primary current distribution; Computer Simulation; Computer-Aided Design; Electric Impedance; Equipment Design; Equipment Failure Analysis; Microelectrodes; Models, Theoretical;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/TBME.2007.912430
Filename
4384243
Link To Document