Ji J, Najafi K, Wise K D
Department of Electrical Engineering and Computer Science, University of Michigan, Ann Arbor 48109.
IEEE Trans Biomed Eng. 1991 Jan;38(1):75-81. doi: 10.1109/10.68212.
This paper reports 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 microV rms. It provides for signaling over the power supply to allow 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 from 150 to 250 kHz. Neural signals as low as 20 microV (typically 640 microV 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.
本文报道了一种低噪声解复用系统,该系统能够重建源自复用微电极阵列的多通道单单元神经信号。整个复用-解复用系统实现了十个通道,每通道增益为68 dB,带宽为100 Hz至6 kHz,等效噪声水平(相对于探头输入)为13 μV rms。它通过电源进行信号传输,以允许控制片上探头功能,如自检。通道间串扰小于3%,通过消隐转换间隔来抑制开关噪声。200 kHz的探头采样时钟在150至250 kHz的范围内自动跟踪。低至20 μV的神经信号(在解复用系统输入处通常为640 μV)能够被重建。整个系统架构与从单个探头数据线解复用多达40个时分复用电极通道兼容。