DocumentCode
1754791
Title
A Flexible Base Electrode Array for Intraspinal Microstimulation
Author
Khaled, Imad ; Elmallah, Salma ; Cheng Cheng ; Moussa, Walied A. ; Mushahwar, V.K. ; Elias, Anastasia L.
Author_Institution
Dept. of Mech. Eng., Univ. of Alberta, Edmonton, AB, Canada
Volume
60
Issue
10
fYear
2013
fDate
Oct. 2013
Firstpage
2904
Lastpage
2913
Abstract
In this paper, we report the development of a flexible base array of penetrating electrodes which can be used to interface with the spinal cord. A customizable and feasible fabrication protocol is described. The flexible base arrays were fabricated and implanted into surrogate cords which were elongated by 12%. The resulting strains were optically measured across the cord and compared to those associated with two types of electrodes arrays (one without a base and one with a rigid base connecting the electrodes). The deformation behavior of cords implanted with the flexible base arrays resembled the behavior of cords implanted with individual microwires that were not connected through a base. The results of the strain test were used to validate a 2-D finite element model. The validated model was used to assess the stresses induced by the electrodes of the three types of arrays on the cord, and to examine how various design parameters (thickness, base modulus, etc.,) impact the mechanical behavior of the electrode array. Rigid base arrays induced higher stresses on the cord than the flexible base arrays which in turn imposed higher stresses than the individual microwire implants. The developed flexible base array showed improvement over the rigid base array; however, its stiffness needs to be further reduced to emulate the mechanical behavior of individual microwire arrays without a base.
Keywords
bioelectric phenomena; biomechanics; biomedical electrodes; deformation; microelectrodes; neurophysiology; patient treatment; prosthetics; 2-D finite element model; deformation behavior; feasible fabrication protocol; flexible base electrode array; implanted cord behavior; individual microwire implant; intraspinal microstimulation; mechanical behavior; penetrating electrode; rigid base arrays; strain test; surrogate cord implantation; Arrays; Electrodes; Finite element analysis; Spinal cord; Strain; Stress; Wires; Electrical stimulation; electrode array; finite element model; mechanical compliance; mechanical properties; spinal cord; spinal cord injury; Computer Simulation; Computer-Aided Design; Elastic Modulus; Electrodes, Implanted; Equipment Design; Equipment Failure Analysis; Microelectrodes; Models, Theoretical; Spinal Cord Stimulation;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/TBME.2013.2265877
Filename
6523960
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