Sepehrian H, Gosselin B
Annu Int Conf IEEE Eng Med Biol Soc. 2014;2014:5284-7. doi: 10.1109/EMBC.2014.6944818.
Thoroughly studying the brain activity of freely moving subjects requires miniature data acquisition systems to measure and wirelessly transmit neural signals in real time. In this application, it is mandatory to simultaneously record the bioelectrical activity of a large number of neurons to gain a better knowledge of brain functions. However, due to limitations in transferring the entire raw data to a remote base station, employing dedicated data reduction techniques to extract the relevant part of neural signals is critical to decrease the amount of data to transfer. In this work, we present a new dual-band neural amplifier to separate the neuronal spike signals (SPK) and the local field potential (LFP) simultaneously in the analog domain, immediately after the pre-amplification stage. By separating these two bands right after the pre-amplification stage, it is possible to process LFP and SPK separately. As a result, the required dynamic range of the entire channel, which is determined by the signal-to-noise ratio of the SPK signal of larger bandwidth, can be relaxed. In this design, a new current-reuse low-power low-noise amplifier and a new dual-band filter that separates SPK and LFP while saving capacitors and pseudo resistors. A four-channel dual-band (SPK, LFP) analog front-end capable of simultaneously separating SPK and LFP is implemented in a TSMC 0.18 μm technology. Simulation results present a total power consumption per channel of 3.1 μw for an input referred noise of 3.28 μV and a NEF for 2.07. The cutoff frequency of the LFP band is fc=280 Hz, and fL=725 Hz and fL=11.2 KHz for SPK, with 36 dB gain for LFP band 46 dB gain for SPK band.
深入研究自由移动受试者的大脑活动需要微型数据采集系统来实时测量并无线传输神经信号。在此应用中,必须同时记录大量神经元的生物电活动,以便更好地了解大脑功能。然而,由于将全部原始数据传输到远程基站存在限制,采用专用的数据缩减技术来提取神经信号的相关部分对于减少需传输的数据量至关重要。在这项工作中,我们提出了一种新型双频神经放大器,可在预放大阶段之后立即在模拟域中同时分离神经元尖峰信号(SPK)和局部场电位(LFP)。通过在预放大阶段之后立即分离这两个频段,可以分别处理LFP和SPK。结果,由较大带宽的SPK信号的信噪比决定的整个通道所需的动态范围可以放宽。在该设计中,一种新型的电流复用低功耗低噪声放大器和一种新型双频滤波器,在节省电容器和伪电阻的同时分离SPK和LFP。一款能够同时分离SPK和LFP的四通道双频(SPK、LFP)模拟前端采用台积电0.18μm工艺实现。仿真结果表明,对于3.28μV的输入参考噪声,每通道的总功耗为3.1μW,噪声效率因子为2.07。LFP频段的截止频率为fc = 280Hz,SPK的fL = 725Hz和fL = 11.2KHz,LFP频段增益为36dB,SPK频段增益为46dB。