Suppr超能文献

微流控集成多模态可穿戴混合贴片,用于无线和连续的生理监测。

Microfluidic-Integrated Multimodal Wearable Hybrid Patch for Wireless and Continuous Physiological Monitoring.

机构信息

Department of Electronic Engineering, Kwangwoon University, 447-1, Seoul 139-701, Republic of Korea.

Human IoT Focused Research Center, Kwangwoon University, 447-1, Seoul 139-701, Republic of Korea.

出版信息

ACS Sens. 2023 Aug 25;8(8):2960-2974. doi: 10.1021/acssensors.3c00148. Epub 2023 Jul 27.

Abstract

Despite extensive advances in wearable monitoring systems, most designs focus on the detection of physical parameters or metabolites and do not consider the integration of microfluidic channels, miniaturization, and multimodality. In this study, a combination of multimodal (biochemical and electrophysiological) biosensing and microfluidic channel-integrated patch-based wireless systems is designed and fabricated using flexible materials for improved wearability, ease of operation, and real-time and continuous monitoring. The reduced graphene oxide-based microfluidic channel-integrated glucose biosensor exhibits a good sensitivity of 19.97 (44.56 without fluidic channels) μA mM cm within physiological levels (10 μM-0.4 mM) with good long-term and bending stability. All the sensors in the patch are initially validated using sauna gown sweat-based on-body and real-time tests with five separate individuals who perspired three times each. Multimodal glucose and electrocardiogram (ECG) sensing, along with their real-time adjustment based on sweat pH and temperature fluctuations, optimize sensing accuracy. Laser-burned hierarchical MXene-polyvinylidene fluoride-based conductive carbon nanofiber-based dry ECG electrodes exhibit low skin contact impedance (40.5 kΩ cm) and high-quality electrophysiological signals (signal-to-noise ratios = 23.4-32.8 dB). The developed system is utilized to accurately and wirelessly monitor the sweat glucose and ECG of a human subject engaged in physical exercise in real time.

摘要

尽管可穿戴监测系统取得了广泛的进展,但大多数设计都侧重于物理参数或代谢物的检测,而不考虑微流道、小型化和多模态的集成。在这项研究中,设计并制造了一种结合多模态(生化和电生理)生物传感和微流道集成的基于贴片的无线系统,使用柔性材料提高了可穿戴性、操作便利性以及实时和连续监测能力。基于还原氧化石墨烯的微流道集成葡萄糖生物传感器在生理水平(10 μM-0.4 mM)内表现出良好的灵敏度,为 19.97(无流道时为 44.56)μA mM cm,具有良好的长期和弯曲稳定性。贴片中的所有传感器最初都使用桑拿服汗液进行基于人体的体内和实时测试,五个个体每人出汗三次来进行验证。多模态葡萄糖和心电图(ECG)传感,以及根据汗液 pH 值和温度波动进行实时调整,优化了传感准确性。激光烧蚀的分层 MXene-聚偏二氟乙烯基导电碳纳米纤维基干式 ECG 电极具有较低的皮肤接触阻抗(40.5 kΩ cm)和高质量的电生理信号(信噪比=23.4-32.8 dB)。所开发的系统用于实时准确地无线监测人体运动时的汗液葡萄糖和 ECG。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验