论文标题
一个完全集成的传感器 - 脑机界面系统,用于恢复体感应
A Fully Integrated Sensor-Brain-Machine Interface System for Restoring Somatosensation
论文作者
论文摘要
感觉反馈对于恢复神经系统损伤后运动控制的神经假体的表现至关重要。瘫痪臂的直接神经控制的最新进展提出了针对微型低功率传感器系统的新要求。为了应对这一挑战,我们开发了一个完全集成的无线传感器 - 脑机界面(SBMI)系统,用于将关键的体感信号,指尖力和肢体关节角传达给大脑。该系统由触觉力传感器,电偏器和神经界面组成。触觉力传感器具有用于传感的CMOS设计的新型光学波导。电元计集成了超低功率数字信号处理器(DSP)进行实时关节角度测量。神经界面可实现双向神经刺激和记录。已经开发了传感器和传感界面,模数转换器(ADC)和超宽带(UWB)无线收发器的创新设计。这些原型已在180nm标准CMOS技术中制造,并在板凳和体内进行了测试。开发的系统提供了一种新的解决方案,可为下一代神经假体提供体验反馈。
Sensory feedback is critical to the performance of neural prostheses that restore movement control after neurological injury. Recent advances in direct neural control of paralyzed arms present new requirements for miniaturized, low-power sensor systems. To address this challenge, we developed a fully-integrated wireless sensor-brain-machine interface (SBMI) system for communicating key somatosensory signals, fingertip forces and limb joint angles, to the brain. The system consists of a tactile force sensor, an electrogoniometer, and a neural interface. The tactile force sensor features a novel optical waveguide on CMOS design for sensing. The electrogoniometer integrates an ultra low-power digital signal processor (DSP) for real-time joint angle measurement. The neural interface enables bidirectional neural stimulation and recording. Innovative designs of sensors and sensing interfaces, analog-to-digital converters (ADC) and ultra wide-band (UWB) wireless transceivers have been developed. The prototypes have been fabricated in 180nm standard CMOS technology and tested on the bench and in vivo. The developed system provides a novel solution for providing somatosensory feedback to next-generation neural prostheses.