DocumentCode
1452561
Title
Selectivity of multiple-contact nerve cuff electrodes: a simulation analysis
Author
Choi, Adam Q. ; Cavanaugh, James K. ; Durand, Dominique M.
Author_Institution
Dept. of Biomed. Eng., Case Western Reserve Univ., Cleveland, OH, USA
Volume
48
Issue
2
fYear
2001
fDate
2/1/2001 12:00:00 AM
Firstpage
165
Lastpage
172
Abstract
Advances in functional neuromuscular stimulation (FNS) have increased the need for nerve cuff designs that can control multiple motor functions through selective stimulation of selected populations of axons. This selectivity has proved to be difficult to achieve. Recent experiments suggest that it is possible to slowly reshape peripheral nerve without affecting its physiological function. Using computer simulations the authors have tested the hypothesis that changing the cross section of a nerve from a round to a flat configuration can significantly improve the selectivity of a nerve cuff. The authors´ introduce a new index to estimate selectivity to evaluate the various designs. This index is based on the ability of a nerve electrode to stimulate a target axon without stimulating any other axons. The calculations involve a three-dimensional finite element model to represent the electrical properties of the nerve and cuff and the determination of the firing properties of individual axons. The selectivity rating was found to be significantly higher for the Flat Cuff than the Round Cuff. The result was valid with uniform or random distribution of axons and with a random distribution of fascicles diameters. Flattening of individual fascicles also improved the selectivity of the Flat Cuff but only when the number of contacts used was increased to maintain uniform contact density. Therefore, cuff designs that can reshape the nerve into flatter configurations should yield better cuff performance than the cylindrical cuffs but will require higher contact density.
Keywords
biomedical electrodes; digital simulation; finite element analysis; neuromuscular stimulation; physiological models; axon firing properties; flat cuff; multiple-contact nerve cuff electrodes selectivity; nerve cross section; round cuff; selected populations; simulation analysis; target axon stimulation; three-dimensional finite element model; uniform contact density maintenance; Analytical models; Biomedical electrodes; Biomedical engineering; Computer simulation; Muscles; Nerve fibers; Neural engineering; Neuromuscular stimulation; Recruitment; Testing; Anisotropy; Axons; Electric Stimulation Therapy; Electrodes; Equipment Design; Membrane Potentials; Models, Neurological; Recruitment, Neurophysiological;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/10.909637
Filename
909637
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