Self-powered motion state monitoring system based on combined triboelectric nanogenerators for human physiological signal monitoring and energy collection

IF 2.6 4区 工程技术 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC Microelectronic Engineering Pub Date : 2023-12-02 DOI:10.1016/j.mee.2023.112127
Liangsong Huang, Xiaofei Bu, Peng Zhang, Kun Zhang, Yuxia Li, Dengxu Wang, Chao Ding
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Abstract

The study of self-powered motion state monitoring systems based on triboelectric nanogenerators has recently received increasing attention. In this paper, we propose a self-powered system consisting of two low-cost and simply manufactured triboelectric nanogenerators for human physiological signal monitoring and energy collection. This system can monitor the trunk information and gait information during human activities, and measure human motion status in a holistic manner. The triboelectric nanogenerator, which monitors body torso information (B-TENG), we optimize its triboelectric layer through the microstructure of sandpaper to increase its contact area with the skin. In addition, by adding iron powder into the B-TENG electrode layer, the magnetic permeability of the induction electrode is increased to improve its output performance, and its maximum open-circuit voltage can reach 44.3 V. The triboelectric nanogenerator, which is installed on the foot to monitor gait information (F-TENG), can reach an average open-circuit voltage of 205.6 V by adding a rectangular protrusion structure to the triboelectric layer. In addition, due to its high output performance (∼4700 μw), the F-TENG can collect mechanical energy generated from the soles of the feet during daily human activities and charge a 100 μF capacitor to 1.4 V within 60 s, subsequently powering the miniature electronics. During foot walking, F-TENG is able to light up more than 60 light-emitting diodes. By having the experimenters wear these two triboelectric nanogenerators, we can record the frequency and amplitude signals of the experimenter's elbow, knee, breath, and gait in real time. We also monitored three running states of the human body through these two triboelectric nanogenerators, including normal state, insufficient exercise capacity, and dyspnea. We believe that this work provides a new direction for the development of big data motion analysis and self-powered smart exercise devices.

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基于组合摩擦电纳米发电机的自供电运动状态监测系统,用于人体生理信号监测和能量采集
基于摩擦电纳米发电机的自供电运动状态监测系统的研究近年来受到越来越多的关注。在本文中,我们提出了一个由两个低成本和简单制造的摩擦电纳米发电机组成的自供电系统,用于人体生理信号监测和能量收集。该系统可以监测人体活动过程中的躯干信息和步态信息,全面测量人体的运动状态。监测人体躯干信息的摩擦电纳米发电机(B-TENG),我们通过砂纸的微观结构优化其摩擦电层,以增加其与皮肤的接触面积。此外,通过在B-TENG电极层中加入铁粉,提高了感应电极的磁导率,提高了其输出性能,其最大开路电压可达44.3 V。该摩擦电纳米发电机安装在足部用于监测步态信息(F-TENG),通过在摩擦电层上增加一个矩形突起结构,可以达到205.6 V的平均开路电压。此外,由于其高输出性能(~4700 μw), F-TENG可以收集人类日常活动中脚底产生的机械能,并在60 秒内将100 μF的电容器充电到1.4 V,随后为微型电子设备供电。在步行过程中,F-TENG能够点亮60多个发光二极管。通过让实验人员佩戴这两个摩擦电纳米发电机,我们可以实时记录实验人员肘部、膝盖、呼吸和步态的频率和幅度信号。我们还通过这两个摩擦电纳米发电机监测人体的三种运行状态,包括正常状态、运动能力不足和呼吸困难。我们相信这项工作为大数据运动分析和自供电智能运动设备的发展提供了新的方向。
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来源期刊
Microelectronic Engineering
Microelectronic Engineering 工程技术-工程:电子与电气
CiteScore
5.30
自引率
4.30%
发文量
131
审稿时长
29 days
期刊介绍: Microelectronic Engineering is the premier nanoprocessing, and nanotechnology journal focusing on fabrication of electronic, photonic, bioelectronic, electromechanic and fluidic devices and systems, and their applications in the broad areas of electronics, photonics, energy, life sciences, and environment. It covers also the expanding interdisciplinary field of "more than Moore" and "beyond Moore" integrated nanoelectronics / photonics and micro-/nano-/bio-systems. Through its unique mixture of peer-reviewed articles, reviews, accelerated publications, short and Technical notes, and the latest research news on key developments, Microelectronic Engineering provides comprehensive coverage of this exciting, interdisciplinary and dynamic new field for researchers in academia and professionals in industry.
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