DocumentCode :
11952
Title :
A PDMS-Based Integrated Stretchable Microelectrode Array (isMEA) for Neural and Muscular Surface Interfacing
Author :
Liang Guo ; Guvanasen, Gareth S. ; Xi Liu ; Tuthill, C. ; Nichols, T.R. ; DeWeerth, Stephen P.
Author_Institution :
Wallace H. Coulter Dept. of Biomed. Eng., Emory Univ., Atlanta, GA, USA
Volume :
7
Issue :
1
fYear :
2013
fDate :
Feb. 2013
Firstpage :
1
Lastpage :
10
Abstract :
Numerous applications in neuroscience research and neural prosthetics, such as electrocorticogram (ECoG) recording and retinal prosthesis, involve electrical interactions with soft excitable tissues using a surface recording and/or stimulation approach. These applications require an interface that is capable of setting up high-throughput communications between the electrical circuit and the excitable tissue and that can dynamically conform to the shape of the soft tissue. Being a compliant material with mechanical impedance close to that of soft tissues, polydimethylsiloxane (PDMS) offers excellent potential as a substrate material for such neural interfaces. This paper describes an integrated technology for fabrication of PDMS-based stretchable microelectrode arrays (MEAs). Specifically, as an integral part of the fabrication process, a stretchable MEA is directly fabricated with a rigid substrate, such as a thin printed circuit board (PCB), through an innovative bonding technology-via-bonding-for integrated packaging. This integrated strategy overcomes the conventional challenge of high-density packaging for this type of stretchable electronics. Combined with a high-density interconnect technology developed previously, this stretchable MEA technology facilitates a high-resolution, high-density integrated system solution for neural and muscular surface interfacing. In this paper, this PDMS-based integrated stretchable MEA (isMEA) technology is demonstrated by an example design that packages a stretchable MEA with a small PCB. The resulting isMEA is assessed for its biocompatibility, surface conformability, electrode impedance spectrum, and capability to record muscle fiber activity when applied epimysially.
Keywords :
biomedical electrodes; biomedical electronics; eye; integrated circuit interconnections; integrated circuit packaging; microelectrodes; microfabrication; muscle; neurophysiology; polymers; printed circuits; prosthetics; ECoG; PCB; PDMS-based integrated stretchable microelectrode array; biocompatibility; electrical circuit; electrical interactions; electrocorticogram recording; electrode impedance spectrum; high-density interconnect technology; high-density packaging; innovative bonding technology; integrated packaging; isMEA; mechanical impedance; microfabrication; muscle fiber activity; muscular surface interfacing; neural interfaces; neural prosthetics; polydimethylsiloxane; printed circuit board; retinal prosthesis; soft excitable tissues; stretchable electronics; substrate material; surface conformability; Electrodes; Fabrication; Gold; Muscles; Substrates; Surface impedance; Surface treatment; Compliant; epimysial; integrated packaging; microelectrode array (MEA); microfabrication; neural prosthesis; neural recording and stimulation; polydimethylsiloxane (PDMS); stretchable; surface; Animals; Cells, Cultured; Dimethylpolysiloxanes; Materials Testing; Mice; Microelectrodes; Muscle Fibers, Skeletal; Neural Prostheses; Neurons; Nylons; Rats;
fLanguage :
English
Journal_Title :
Biomedical Circuits and Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
1932-4545
Type :
jour
DOI :
10.1109/TBCAS.2012.2192932
Filename :
6197244
Link To Document :
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