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A 1024-Channel CMOS Microelectrode Array With 26400 Electrodes for Recording and Stimulation of Electrogenic Cells In Vitro

机译:具有26400个电极的1024通道CMOS微电极阵列用于体外记录和刺激电源细胞

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摘要

To advance our understanding of the functioning of neuronal ensembles, systems are needed to enable simultaneous recording from a large number of individual neurons at high spatiotemporal resolution and good signal-to-noise ratio. Moreover, stimulation capability is highly desirable for investigating, for example, plasticity and learning processes. Here, we present a microelectrode array (MEA) system on a single CMOS die for in vitro recording and stimulation. The system incorporates 26,400 platinum electrodes, fabricated by in-house post-processing, over a large sensing area (3.85 × 2.10 mm2) with sub-cellular spatial resolution (pitch of 17.5 μm). Owing to an area and power efficient implementation, we were able to integrate 1024 readout channels on chip to record extracellular signals from a user-specified selection of electrodes. These channels feature noise values of 2.4 μVrms in the action-potential band (300 Hz–10 kHz) and 5.4 μVrms in the local-field-potential band (1 Hz–300 Hz), and provide programmable gain (up to 78 dB) to accommodate various biological preparations. Amplified and filtered signals are digitized by 10 bit parallel single-slope ADCs at 20 kSamples/s. The system also includes 32 stimulation units, which can elicit neural spikes through either current or voltage pulses. The chip consumes only 75 mW in total, which obviates the need of active cooling even for sensitive cell cultures.
机译:为了增进我们对神经元集成体功能的理解,需要系统以高时空分辨率和良好的信噪比同时记录大量单个神经元。此外,刺激能力对于研究例如可塑性和学习过程非常需要。在这里,我们介绍了在单个CMOS芯片上的微电极阵列(MEA)系统,用于体外记录和刺激。该系统包含26,400个铂电极,该铂电极通过内部后处理在较大的感应区域(3.85×2.10 mm 2 )上以亚细胞空间分辨率(间距为17.5μm)进行组装。由于面积和功率的高效实现,我们能够在芯片上集成1024个读出通道,以记录来自用户指定电极选择的细胞外信号。这些通道在动作电位带(300 Hz–10 kHz)中具有2.4μVrms的噪声值,在局部场电位带(1 Hz–300 Hz)中具有5.4μVrms的噪声值,并提供可编程增益(高达78 dB)容纳各种生物制剂。放大和滤波后的信号由10位并行单斜率ADC以20 kSamples / s的速率数字化。该系统还包括32个刺激单元,可通过电流或电压脉冲引发神经尖峰。该芯片的总功耗仅为75 mW,即使对于敏感的细胞培养,也无需主动冷却。

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