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A low-power current-reuse analog front-end for multi-channel neural signal recording

机译:用于多通道神经信号记录的低功耗电流复用模拟前端

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Studying brain activity in-vivo requires to simultaneously record bioelectrical from several microelectrodes in order to capture neurons interactions. In this work, we present a new current-reuse analog front-end (AFE), which is scalable to very large number of recording channels, thanks to its small implementation area and its low-power consumption. This proposed AFE includes a low-noise amplifier (LNA) and a programmable gain amplifier (PGA) which employ fully differential folded cascode current-reuse structures leading to decreased power consumption and silicon area. Moreover, the proposed AFE presents improved output swing compared to previous current-reuse topologies by employing different common mode feedback circuits for LNA and PGA. A 4-channel system implemented in a CMOS 0.18-μm technology is presented as a proof-of-concept. Post-layout simulation results are reported to verify its performance. The total power consumption of one channel including a low-noise amplifier and a variable gain stage is 8.2 μW (4.1 μw for LNA and 4.1 μw for PGA), for an input referred noise of 3.28 μV. The entire AFE presents four selectable gains of 45.2 dB, 50.1 dB, 55.3 dB and 59.65 dB, and occupies a die area of 0.035 mm per channel.
机译:体内研究大脑活动需要同时记录来自多个微电极的生物电,以捕获神经元的相互作用。在这项工作中,我们提出了一个新的电流重用模拟前端(AFE),由于其实现面积小和功耗低,它可以扩展到非常多的记录通道。该拟议的AFE包括低噪声放大器(LNA)和可编程增益放大器(PGA),它们采用全差分折叠共源共栅电流重用结构,从而降低了功耗和硅面积。此外,与以前的电流重用拓扑相比,通过为LNA和PGA采用不同的共模反馈电路,提出的AFE提出了改进的输出摆幅。提出了采用CMOS0.18-μm技术实现的4通道系统作为概念验证。报告布局后仿真结果以验证其性能。对于一个3.28μV的输入参考噪声,包括一个低噪声放大器和一个可变增益级的一个通道的总功耗为8.2μW(LNA为4.1μw,PGA为4.1μw)。整个AFE具有45.2 dB,50.1 dB,55.3 dB和59.65 dB的四个可选增益,每个通道的芯片面积为0.035 mm。

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