Title :
Single-unit neural recording with active microelectrode arrays
Author :
Bai, Qing ; Wise, Kensall D.
Author_Institution :
Eng. Res. Lab., Agilent Technol. Inc., Palo Alto, CA, USA
Abstract :
Discusses the single-unit recording characteristics of microelectrode arrays containing on-chip signal processing circuitry. Probes buffered using on-chip unity-gain operational amplifiers provide an output resistance of 200 Ω with an input-referred noise of 11-μV root-mean-square (rms) (100 Hz-10 kHz). Simultaneous in vivo recordings from single neurons using buffered and unbuffered (passive) iridium recording sites separated by less than 20 μm have shown that the use of on-chip circuitry does not significantly degrade system noise. Single-unit neural activity has also been studied using probes containing closed-loop preamplifiers having a voltage gain of 40 dB and a bandwidth of 13 kHz, and several input de-baseline stabilization techniques have been evaluated. Low-noise in vivo recordings with a multiplexed probe have been demonstrated for the first time using an external asymmetrical clock running at 200 kHz. The multiplexed system adds less than 8-μV rms of noise to the recorded signals, suppressing the 5-V clock transitions to less than 2 ppm.
Keywords :
bioelectric potentials; biomedical electrodes; biomedical electronics; microelectrodes; micromechanical devices; neurophysiology; operational amplifiers; preamplifiers; probes; 100 Hz to 10 kHz; 11 muV; 13 kHz; 20 mum; 200 kHz; 200 ohm; 5 V; 8 muV; Ir; active microelectrode arrays; clock transitions suppression; input debaseline stabilization techniques; input-referred noise; multiplexed probe; on-chip signal processing circuitry; on-chip unity-gain operational amplifiers; recorded signals; simultaneous in vivo recordings; single-unit neural recording; Array signal processing; Circuit noise; Clocks; Disk recording; In vivo; Microelectrodes; Neurons; Operational amplifiers; Probes; System-on-a-chip; Animals; Cochlear Nucleus; Equipment Design; Microelectrodes; Microscopy, Electron, Scanning; Neurons; Signal Processing, Computer-Assisted; Swine;
Journal_Title :
Biomedical Engineering, IEEE Transactions on