Wang Xinguo, Han Songyu, Yan Peng, Lin Yang, Wang Chen, Qian Lei, Xing Pujia, Cao Yue, Song Xinglei, Wang Guoxing, Constandinou Timothy G, Liu Yan
IEEE Trans Biomed Circuits Syst. 2025 Jun;19(3):549-561. doi: 10.1109/TBCAS.2024.3460388.
Simultaneous electrophysiological and chemical recording allows for multi-modal neural instrumentation and provides insights into chemical synapses and ion channels across the cell membrane. However, inter-modal interference can hinder highly synchronized recording in large-scale systems with high temporal and spatial resolution. In this work, we propose a 1024-channel lab-on-CMOS system for dual-modal neural recording with in-pixel digitization and interference suppression. A foreground calibration scheme with tunable capacitance is implemented in-pixel to compensate for the crosstalk between electrical and chemical recording. Active pixels for both electrical and chemical modalities are designed based on a pulse width modulation (PWM) analog-to-digital conversion scheme. CMOS-compatible post-processing is implemented to realize in-pixel electrodes and chemical sensing membranes. The prototype, implemented in a 180 nm CMOS technology, occupies a total area of 33 mm with 1024 pixels, and each unit pixel includes one electrical recording site and two chemical recording sites, with dimensions of 150 $\mu$m $\times$ 130 $\mu$m. The total system power consumption is 19.68 mW at a frame rate of 9k and 3k for electrical and chemical imaging respectively. The in-vitro experiment demonstrated the concurrent high density electrophysilogical and electrochemical recording with sub millisecond temporal resolution.
同步电生理和化学记录实现了多模态神经检测,并为跨细胞膜的化学突触和离子通道提供了深入见解。然而,模态间干扰会阻碍在具有高时空分辨率的大规模系统中进行高度同步的记录。在这项工作中,我们提出了一种用于双模态神经记录的1024通道CMOS芯片实验室系统,具有像素内数字化和干扰抑制功能。通过在像素内实现具有可调电容的前景校准方案,以补偿电记录和化学记录之间的串扰。基于脉宽调制(PWM)模数转换方案设计了用于电和化学模态的有源像素。实现了与CMOS兼容的后处理,以实现像素内电极和化学传感膜。该原型采用180nm CMOS技术实现,1024个像素的总面积为33平方毫米,每个单位像素包括一个电记录位点和两个化学记录位点,尺寸为150μm×130μm。在电成像和化学成像帧率分别为9k和3k时,系统总功耗为19.68mW。体外实验证明了该系统能够以亚毫秒级的时间分辨率同时进行高密度电生理和电化学记录。