Title :
A low-noise demultiplexing system for active multichannel microelectrode arrays
Author :
Ji, Jin ; Najafi, Khalil ; Wise, Kensall D.
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., Michigan Univ., Ann Arbor, MI, USA
Abstract :
The authors report a low-noise demultiplexing system capable of reconstructing multichannel single-unit neural signals derived from multiplexed microelectrode arrays. The overall multiplexing-demultiplexing system realizes ten channels, a per-channel gain of 68 dB, a bandwidth from 100 Hz to 6 kHz, and an equivalent noise level (referred to the probe input) of 13 mu V RMS. It provides for signaling over the power supply to allow the control of on-chip probe functions such as self-testing. The interchannel crosstalk is less than 3%, and switching noise is suppressed by blanking the transition intervals. The 200-kHz probe sample clock is tracked automatically over a range of 150 to 250 kHz. Neural signals as low as 20 mu V (typically 640 mu V at the demultiplexing system input) can be reconstructed. The overall system organization is compatible with the demultiplexing of as many as 40 time-multiplexed electrode channels from a single probe data line.
Keywords :
biological techniques and instruments; microelectrodes; neurophysiology; 100 Hz to 6 kHz; 13 muV; 150 to 250 kHz; 20 muV; 640 muV; active multichannel microelectrode arrays; bandwidth; interchannel crosstalk; low-noise demultiplexing system; multiplexed microelectrode arrays; neural signals; noise level; on-chip probe functions; probe sample clock; switching noise; Automatic control; Bandwidth; Built-in self-test; Crosstalk; Demultiplexing; Gain; Microelectrodes; Noise level; Power supplies; Probes; Electric Conductivity; Equipment Design; Microelectrodes; Signal Processing, Computer-Assisted;
Journal_Title :
Biomedical Engineering, IEEE Transactions on