IEEE Trans Biomed Circuits Syst. 2024 Aug;18(4):908-922. doi: 10.1109/TBCAS.2024.3366649. Epub 2024 Aug 21.
This article presents a digitally-assisted multi-channel neural recording system. The system uses a 16-channel chopper-stabilized Time Division Multiple Access (TDMA) scheme to record multiplexed neural signals into a single shared analog front end (AFE). The choppers reduce the total integrated noise across the modulated spectrum by 2.4 × and 4.3 × in Local Field Potential (LFP) and Action Potential (AP) bands, respectively. In addition, a novel impedance booster based on Sign-Sign least mean squares (LMS) adaptive filter (AF) predicts the input signal and pre-charges the AC-coupling capacitors. The impedance booster module increases the AFE input impedance by a factor of 39 × with a 7.1% increase in area. The proposed system obviates the need for on-chip digital demodulation, filtering, and remodulation normally required to extract Electrode Offset Voltages (EOV) from multiplexed neural signals, thereby achieving 3.6 × and 2.8 × savings in both area and power, respectively, in the EOV filter module. The Sign-Sign LMS AF is reused to determine the system loop gain, which relaxes the feedback DAC accuracy requirements and saves 10.1 × in power compared to conventional oversampled DAC truncation-error ΔΣ-modulator. The proposed SoC is designed and fabricated in 65 nm CMOS, and each channel occupies 0.00179 mm of active area. Each channel consumes 5.11 μW of power while achieving 2.19 μV and 2.4 μV of input referred noise (IRN) over AP and LFP bands. The resulting AP band noise efficiency factor (NEF) is 1.8. The proposed system is verified with acute in-vivo recordings in a Sprague-Dawley rat using parylene C based thin-film platinum nanorod microelectrodes.
本文提出了一种数字辅助的多通道神经记录系统。该系统采用 16 通道斩波稳定时分多址 (TDMA) 方案,将多路复用的神经信号记录到单个共享模拟前端 (AFE) 中。斩波器将调制谱中的总积分噪声分别降低 2.4 倍和 4.3 倍,在局部场电位 (LFP) 和动作电位 (AP) 频段。此外,一种基于符号-符号最小均方 (LMS) 自适应滤波器 (AF) 的新型阻抗升压器预测输入信号并对交流耦合电容器预充电。该阻抗升压模块将 AFE 输入阻抗提高 39 倍,面积增加 7.1%。该系统无需像通常从多路复用神经信号中提取电极失调电压 (EOV) 那样在片上进行数字解调、滤波和重调制,从而使 EOV 滤波器模块的面积和功率分别节省 3.6 倍和 2.8 倍。所提出的 Sign-Sign LMS AF 被重新用于确定系统环路增益,从而放宽了反馈 DAC 精度要求,并与传统的过采样 DAC 截断误差 ΔΣ 调制器相比,节省了 10.1 倍的功率。该 SoC 采用 65nm CMOS 设计和制造,每个通道占用 0.00179mm 的有源面积。每个通道消耗 5.11μW 的功率,在 AP 和 LFP 频段分别实现 2.19μV 和 2.4μV 的输入参考噪声 (IRN)。由此产生的 AP 带噪声效率因子 (NEF) 为 1.8。该系统采用基于聚对二甲苯 C 的薄膜铂纳米棒微电极在 Sprague-Dawley 大鼠进行急性体内记录进行了验证。