Title :
Metal-Transfer-Micromolded Three-Dimensional Microelectrode Arrays for in-vitro Brain-Slice Recordings
Author :
Rajaraman, Swaminathan ; Choi, Seong-O ; McClain, Maxine A. ; Ross, James D. ; LaPlaca, Michelle C. ; Allen, Mark G.
Author_Institution :
Sch. of Electr. & Comput. Eng., Georgia Inst. of Technol., Atlanta, GA, USA
fDate :
4/1/2011 12:00:00 AM
Abstract :
We report the development of metal-transfer-micromolded 3-D microelectrode arrays (3-D MEAs) and demonstrate successful electrical characterization, biocompatibility measurements, and electrophysiological recordings from rat hippocampal brain slices with these MEAs. Metal transfer micromolding is introduced as a manufacturing technology for producing nonplanar metallized patterned microelectromechanical-systems devices such as MEAs on polymeric substrates. This technology provides a self-aligned metallization scheme that eliminates the need for complex 3-D lithography. Two techniques, i.e., an intentionally formed nonplanar mold and a shadow mask, are demonstrated for the self-aligned metallization scheme. The MEAs have further been packaged using custom-designed commercial printed circuit boards and insulated using parylene deposition. Recording sites have been defined using two techniques: laser micromachining/reactive ion etching (RIE) of parylene and selective deposition of parylene using a “capping” technique. Electrical (impedance spectroscopy), biocompatibility (2-D planar cultures of neurons), electrophysiological (tissue slice recordings) characterizations of the MEAs are successfully demonstrated in this paper. The impedance of the electrodes was modeled based on a classical equivalent circuit, and high-frequency impedance estimation techniques were studied. We believe this fabrication approach offers an attractive route to disposable and biocompatible 3-D MEAs, utilizable by the neurophysiology and pharmacology communities.
Keywords :
bioMEMS; bioelectric phenomena; biomedical measurement; brain; electric impedance measurement; lithography; metallisation; microelectrodes; neurophysiology; polymers; sputter etching; transfer moulding; 3-D lithography; biocompatibility; capping technique; classical equivalent circuit; custom-designed commercial printed circuit boards; electrical characterization; electrical impedance spectroscopy; electrophysiological recordings; high-frequency impedance estimation; in vitro brain slice recordings; laser micromachining; metal transfer micromolding; neurons; neurophysiology; nonplanar metallized patterned microelectromechanical systems; parylene deposition; pharmacology; rat hippocampal brain; reactive ion etching; self-aligned metallization; three-dimensional microelectrode arrays; Electrodes; Fabrication; Gallium; Poles and towers; Polymers; Substrates; Electrophysiological spike recordings; metal transfer micromolding (MTM); neuronal interfacing; three-dimensional microelectrode arrays (3-D MEAs);
Journal_Title :
Microelectromechanical Systems, Journal of
DOI :
10.1109/JMEMS.2011.2105253