Xu Jian, Guo Hongsun, Nguyen Anh Tuan, Lim Hubert, Yang Zhi
Department of Biomedical Engineering, University of Minnesota, 312 Church Street SE, Minneapolis, MN 55455, USA.
Department of Otolaryngology, Head and Neck Surgery, University of Minnesota, 516 Delaware Street SE, Minneapolis, MN 55455, USA.
Micromachines (Basel). 2018 Oct 23;9(11):538. doi: 10.3390/mi9110538.
Electrical nerve recording and stimulation technologies are critically needed to monitor and modulate nerve activity to treat a variety of neurological diseases. However, current neuromodulation technologies presented in the literature or commercially available products cannot support simultaneous recording and stimulation on the same nerve. To solve this problem, a new bidirectional neuromodulation system-on-chip (SoC) is proposed in this paper, which includes a frequency-shaping neural recorder and a fully integrated neural stimulator with charge balancing capability. In addition, auxiliary circuits consisting of power management and data transmission circuits are designed to provide the necessary power supply for the SoC and the bidirectional data communication between the SoC and an external computer via a universal serial bus (USB) interface, respectively. To achieve sufficient low input noise for sensing nerve activity at a sub-10 μ V range, several noise reduction techniques are developed in the neural recorder. The designed SoC was fabricated in a 0.18 μ m high-voltage Bipolar CMOS DMOS (BCD) process technology that was described in a previous publication and it has been recently tested in animal experiments that demonstrate the proposed SoC is capable of achieving reliable and simultaneous electrical stimulation and recording on the same nerve.
为了治疗各种神经系统疾病,迫切需要电神经记录和刺激技术来监测和调节神经活动。然而,文献中介绍的当前神经调节技术或市售产品无法支持在同一神经上同时进行记录和刺激。为了解决这个问题,本文提出了一种新的双向神经调节片上系统(SoC),它包括一个频率整形神经记录器和一个具有电荷平衡能力的完全集成神经刺激器。此外,由电源管理和数据传输电路组成的辅助电路被设计用于分别为SoC提供必要的电源,并通过通用串行总线(USB)接口实现SoC与外部计算机之间的双向数据通信。为了在低于10μV的范围内实现足够低的输入噪声以感测神经活动,在神经记录器中开发了几种降噪技术。所设计的SoC采用先前出版物中描述的0.18μm高压双极互补金属氧化物半导体双扩散金属氧化物半导体(BCD)工艺技术制造,并且最近已在动物实验中进行了测试,结果表明所提出的SoC能够在同一神经上实现可靠的同时电刺激和记录。