Ha Sohmyung, Kim Chul, Chi Yu M, Akinin Abraham, Maier Christoph, Ueno Akinori, Cauwenberghs Gert
IEEE Trans Biomed Eng. 2014 May;61(5):1522-37. doi: 10.1109/TBME.2014.2308552.
This paper presents an overview of the fundamentals and state of the-art in noninvasive physiological monitoring instrumentation with a focus on electrode and optrode interfaces to the body, and micropower-integrated circuit design for unobtrusive wearable applications. Since the electrode/optrode-body interface is a performance limiting factor in noninvasive monitoring systems, practical interface configurations are offered for biopotential acquisition, electrode-tissue impedance measurement, and optical biosignal sensing. A systematic approach to instrumentation amplifier (IA) design using CMOS transistors operating in weak inversion is shown to offer high energy and noise efficiency. Practical methodologies to obviate 1/f noise, counteract electrode offset drift, improve common-mode rejection ratio, and obtain subhertz high-pass cutoff are illustrated with a survey of the state-of-the-art IAs. Furthermore, fundamental principles and state-of-the-art technologies for electrode-tissue impedance measurement, photoplethysmography, functional near-infrared spectroscopy, and signal coding and quantization are reviewed, with additional guidelines for overall power management including wireless transmission. Examples are presented of practical dry-contact and noncontact cardiac, respiratory, muscle and brain monitoring systems, and their clinical applications.
本文概述了无创生理监测仪器的基本原理和最新技术,重点关注与人体的电极和光极接口,以及用于不引人注目的可穿戴应用的微功率集成电路设计。由于电极/光极-人体接口是无创监测系统中的性能限制因素,因此提供了用于生物电位采集、电极-组织阻抗测量和光学生物信号传感的实际接口配置。展示了一种使用在弱反转模式下工作的CMOS晶体管进行仪表放大器(IA)设计的系统方法,该方法具有高能量和噪声效率。通过对最新IA的综述,阐述了消除1/f噪声、抵消电极偏移漂移、提高共模抑制比以及获得亚赫兹高通截止频率的实用方法。此外,还回顾了电极-组织阻抗测量、光电容积脉搏波描记法、功能近红外光谱以及信号编码和量化的基本原理和最新技术,并给出了包括无线传输在内的整体电源管理的附加指南。文中给出了实际的干接触和非接触式心脏、呼吸、肌肉和大脑监测系统及其临床应用的示例。