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Massively Parallel Recording of Unit and Local Field Potentials With Silicon-Based Electrodes
Author(s) -
Jozsef Csicsvari,
Darrell A. Henze,
Brian G. Jamieson,
Kenneth D. Harris,
Anton Sirota,
Péter Barthó,
Kensall D. Wise,
György Buzsáki
Publication year - 2003
Publication title -
journal of neurophysiology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.302
H-Index - 245
eISSN - 1522-1598
pISSN - 0022-3077
DOI - 10.1152/jn.00116.2003
Subject(s) - microelectrode , local field potential , computer science , electrophysiology , massively parallel , premovement neuronal activity , chip , sampling (signal processing) , temporal resolution , silicon , electrode , materials science , neuroscience , optoelectronics , chemistry , computer vision , physics , optics , telecommunications , filter (signal processing) , parallel computing , biology
Parallel recording of neuronal activity in the behaving animal is a prerequisite for our understanding of neuronal representation and storage of information. Here we describe the development of micro-machined silicon microelectrode arrays for unit and local field recordings. The two-dimensional probes with 96 or 64 recording sites provided high-density recording of unit and field activity with minimal tissue displacement or damage. The on-chip active circuit eliminated movement and other artifacts and greatly reduced the weight of the headgear. The precise geometry of the recording tips allowed for the estimation of the spatial location of the recorded neurons and for high-resolution estimation of extracellular current source density. Action potentials could be simultaneously recorded from the soma and dendrites of the same neurons. Silicon technology is a promising approach for high-density, high-resolution sampling of neuronal activity in both basic research and prosthetic devices.

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