Kim Jeonghyun, Gutruf Philipp, Chiarelli Antonio M, Heo Seung Yun, Cho Kyoungyeon, Xie Zhaoqian, Banks Anthony, Han Seungyoung, Jang Kyung-In, Lee Jung Woo, Lee Kyu-Tae, Feng Xue, Huang Yonggang, Fabiani Monica, Gratton Gabriele, Paik Ungyu, Rogers John A
Department of Materials Science and Engineering, Frederick Seitz Materials Research Laboratory, University of Illinois at Urbana-Champaign, Urbana, IL 61801, USA.
Beckman Institute, University of Illinois at Urbana-Champaign, Urbana, IL 61801, USA.
Adv Funct Mater. 2017 Jan 5;27(1). doi: 10.1002/adfm.201604373. Epub 2016 Nov 25.
Development of unconventional technologies for wireless collection, storage and analysis of quantitative, clinically relevant information on physiological status is of growing interest. Soft, biocompatible systems are widely regarded as important because they facilitate mounting on external (e.g. skin) and internal (e.g. heart, brain) surfaces of the body. Ultra-miniaturized, lightweight and battery-free devices have the potential to establish complementary options in bio-integration, where chronic interfaces (i.e. months) are possible on hard surfaces such as the fingernails and the teeth, with negligible risk for irritation or discomfort. Here we report materials and device concepts for flexible platforms that incorporate advanced optoelectronic functionality for applications in wireless capture and transmission of photoplethysmograms, including quantitative information on blood oxygenation, heart rate and heart rate variability. Specifically, reflectance pulse oximetry in conjunction with near-field communication (NFC) capabilities enables operation in thin, miniaturized flexible devices. Studies of the material aspects associated with the body interface, together with investigations of the radio frequency characteristics, the optoelectronic data acquisition approaches and the analysis methods capture all of the relevant engineering considerations. Demonstrations of operation on various locations of the body and quantitative comparisons to clinical gold standards establish the versatility and the measurement accuracy of these systems, respectively.
开发用于无线收集、存储和分析生理状态定量临床相关信息的非常规技术正日益受到关注。柔软的生物相容性系统被广泛认为很重要,因为它们便于安装在身体的外部(如皮肤)和内部(如心脏、大脑)表面。超小型、轻便且无需电池的设备有可能在生物集成方面提供补充选择,在诸如指甲和牙齿等坚硬表面上可以实现长期(即数月)的接口,刺激或不适风险可忽略不计。在此,我们报告了用于柔性平台的材料和设备概念,这些平台集成了先进的光电功能,用于无线采集和传输光电容积脉搏波,包括有关血氧饱和度、心率和心率变异性的定量信息。具体而言,反射式脉搏血氧测定法与近场通信(NFC)功能相结合,可在薄型、小型化的柔性设备中运行。对与身体接口相关的材料方面的研究,以及对射频特性、光电数据采集方法和分析方法的研究,涵盖了所有相关的工程考量。在身体各个部位的操作演示以及与临床金标准的定量比较,分别确立了这些系统的通用性和测量准确性。