JOURNAL ARTICLE

Flexible polyimide-based intracortical electrode arrays with bioactive capability

P.J. RouscheD.S. PellinenD.P. PivinJustin C. WilliamsR.J. VetterDaryl R. Kipke

Year: 2001 Journal:   IEEE Transactions on Biomedical Engineering Vol: 48 (3)Pages: 361-371   Publisher: Institute of Electrical and Electronics Engineers

Abstract

The promise of advanced neuroprosthetic systems to significantly improve the quality of life for a segment of the deaf, blind, or paralyzed population hinges on the development of an efficacious, and safe, multichannel neural interface for the central nervous system. The candidate implantable device that is to provide such an interface must exceed a host of exacting design parameters. We present a thin-film, polyimide-based, multichannel intracortical Bio-MEMS interface manufactured with standard planar photo-lithographic CMOS-compatible techniques on 4-in silicon wafers. The use of polyimide provides a mechanically flexible substrate which can be manipulated into unique three-dimensional designs. Polyimide also provides an ideal surface for the selective attachment of various important bioactive species onto the device in order to encourage favorable long-term reactions at the tissue-electrode interface. Structures have an integrated polyimide cable providing efficient contact points for a high-density connector. This report details in vivo and in vitro device characterization of the biological, electrical and mechanical properties of these arrays. Results suggest that these arrays could be a candidate device for long-term neural implants.

Keywords:
Polyimide Materials science Electrode Brain–computer interface Microelectrode Microelectromechanical systems Wafer CMOS Neural Prosthesis Optoelectronics Lithography Nanotechnology Biomedical engineering Computer science Layer (electronics) Engineering Chemistry

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635
Cited By
4.91
FWCI (Field Weighted Citation Impact)
36
Refs
0.96
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Citation History

Topics

Neuroscience and Neural Engineering
Life Sciences →  Neuroscience →  Cellular and Molecular Neuroscience
Conducting polymers and applications
Physical Sciences →  Materials Science →  Polymers and Plastics
Advanced Memory and Neural Computing
Physical Sciences →  Engineering →  Electrical and Electronic Engineering
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