DocumentCode :
985928
Title :
CMOS microelectrode array for bidirectional interaction with neuronal networks
Author :
Heer, Flavio ; Hafizovic, Sadik ; Franks, Wendy ; Blau, Axel ; Ziegler, Christiane ; Hierlemann, Andreas
Author_Institution :
Phys. Electron. Lab., Eidgenossische Tech. Hochschule, Zurich
Volume :
41
Issue :
7
fYear :
2006
fDate :
7/1/2006 12:00:00 AM
Firstpage :
1620
Lastpage :
1629
Abstract :
A CMOS metal-electrode-based micro system for bidirectional communication (stimulation and recording) with neuronal cells in vitro is presented. The chip overcomes the interconnect challenge that limits today´s bidirectional microelectrode arrays. The microsystem has been fabricated in an industrial CMOS technology with several post-CMOS processing steps to realize 128 biocompatible electrodes and to ensure chip stability in physiological saline. The system comprises all necessary control circuitry and on-chip A/D and D/A conversion. A modular design has been implemented, where individual stimulation- and signal-conditioning circuitry units are associated with each electrode. Stimulation signals with a resolution of 8 bits can be sent to any subset of electrodes at a rate of 60 kHz, while all electrodes of the chip are continuously sampled at a rate of 20 kHz. The circuitry at each electrode can be individually reset to its operating point in order to suppress artifacts evoked by the stimulation pulses. Biological measurements from cultured neuronal networks originating from dissociated cortical tissue of fertilized chicken eggs with amplitudes of up to 500 muVpp are presented
Keywords :
CMOS integrated circuits; array signal processing; bioelectric phenomena; biomedical electrodes; biomembrane transport; cellular biophysics; microelectrodes; neural nets; readout electronics; signal processing equipment; 60 kHz; A/D conversion; CMOS microelectrode array; CMOS technology; bidirectional communication; biological measurements; cortical tissue; extracellular recording; extracellular stimulation; metal electrode based micro system; neuronal networks; signal-conditioning circuit; Bidirectional control; Biological neural networks; CMOS process; CMOS technology; Electrical equipment industry; Electrodes; In vitro; Integrated circuit interconnections; Microelectrodes; Textile industry; CMOS; extracellular stimulation and recording; microelectrode array (MEA);
fLanguage :
English
Journal_Title :
Solid-State Circuits, IEEE Journal of
Publisher :
ieee
ISSN :
0018-9200
Type :
jour
DOI :
10.1109/JSSC.2006.873677
Filename :
1644873
Link To Document :
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