Bonfanti A, Ceravolo M, Zambra G, Gusmeroli R, Spinelli A S, Lacaita A L, Angotzi G N, Baranauskas G, Fadiga L
Dipartimento di Elettronica e Informazione, Politecnico di Milano, piazza L. da Vinci 32, 20133, Italy.
Annu Int Conf IEEE Eng Med Biol Soc. 2010;2010:1555-60. doi: 10.1109/IEMBS.2010.5626696.
This paper reports a multi-channel neural recording system-on-chip (SoC) with digital data compression and wireless telemetry. The circuit consists of a 16 amplifiers, an analog time division multiplexer, an 8-bit SAR AD converter, a digital signal processor (DSP) and a wireless narrowband 400-MHz binary FSK transmitter. Even though only 16 amplifiers are present in our current die version, the whole system is designed to work with 64 channels demonstrating the feasibility of a digital processing and narrowband wireless transmission of 64 neural recording channels. A digital data compression, based on the detection of action potentials and storage of correspondent waveforms, allows the use of a 1.25-Mbit/s binary FSK wireless transmission. This moderate bit-rate and a low frequency deviation, Manchester-coded modulation are crucial for exploiting a narrowband wireless link and an efficient embeddable antenna. The chip is realized in a 0.35- εm CMOS process with a power consumption of 105 εW per channel (269 εW per channel with an extended transmission range of 4 m) and an area of 3.1 × 2.7 mm(2). The transmitted signal is captured by a digital TV tuner and demodulated by a wideband phase-locked loop (PLL), and then sent to a PC via an FPGA module. The system has been tested for electrical specifications and its functionality verified in in-vivo neural recording experiments.
本文报道了一种具有数字数据压缩和无线遥测功能的多通道片上神经记录系统(SoC)。该电路由16个放大器、一个模拟时分复用器、一个8位逐次逼近寄存器模数转换器(SAR AD转换器)、一个数字信号处理器(DSP)和一个无线窄带400 MHz二进制频移键控发射机组成。尽管我们当前芯片版本中只有16个放大器,但整个系统设计为可与64个通道配合工作,证明了对64个神经记录通道进行数字处理和窄带无线传输的可行性。基于动作电位检测和相应波形存储的数字数据压缩,允许使用1.25 Mbit/s的二进制频移键控无线传输。这种适度的比特率和低频偏差、曼彻斯特编码调制对于利用窄带无线链路和高效的可嵌入式天线至关重要。该芯片采用0.35μm CMOS工艺实现,每通道功耗为105μW(传输范围扩展至4 m时每通道为269μW),面积为3.1×2.7 mm²。发射信号由数字电视调谐器捕获,并由宽带锁相环(PLL)解调,然后通过FPGA模块发送到PC。该系统已针对电气规格进行了测试,并在体内神经记录实验中验证了其功能。