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    Please use this identifier to cite or link to this item: https://ir.lib.ncu.edu.tw/handle/987654321/108902


    Title: Highly flexible self-powered sensors based on printed circuit board technology for human motion detection and gesture recognition
    Authors: 傅尹坤;Fuh, Yiin-Kuen;Ho, Hsi-Chun
    Contributors: 工學院機械工程學系
    Keywords: Ankle - physiology;Boards;Circuit boards;deformation sensors;direct-write;Electric potential;Electronics - instrumentation;Equipment Design;Fingers - physiology;Gestures;Humans;Intervals;Movement - physiology;Nanotechnology - instrumentation;Nanowires;near-field electrospinning (NFES);Pattern Recognition, Automated;PCB-based self-powered sensor (PSS);Pliability;Polyvinylidene fluorides;Polyvinyls;printed circuit board (PCB) technology;Printed circuits;Sensors;Voltage
    Date: 2016-01-29
    Issue Date: 2026-04-23 15:13:33 (UTC+8)
    Publisher: IOP Publishing Ltd.;England: IOP Publishing
    Abstract: 摘要: In this paper, we demonstrate a new integration of printed circuit board (PCB) technology-based self-powered sensors (PSSs) and direct-write, near-field electrospinning (NFES) with polyvinylidene fluoride (PVDF) micro/nano fibers (MNFs) as source materials. Integration with PCB technology is highly desirable for affordable mass production. In addition, we systematically investigate the effects of electrodes with intervals in the range of 0.15 mm to 0.40 mm on the resultant PSS output voltage and current. The results show that at a strain of 0.5% and 5 Hz, a PSS with a gap interval 0.15 mm produces a maximum output voltage of 3 V and a maximum output current of 220 nA. Under the same dimensional constraints, the MNFs are massively connected in series (via accumulation of continuous MNFs across the gaps ) and in parallel (via accumulation of parallel MNFs on the same gap) simultaneously. Finally, encapsulation in a flexible polymer with different interval electrodes demonstrated that electrical superposition can be realized by connecting MNFs collectively and effectively in serial/parallel patterns to achieve a high current and high voltage output, respectively. Further improvement in PSSs based on the effect of cooperativity was experimentally realized by rolling-up the device into a cylindrical shape, resulting in a 130% increase in power output due to the cooperative effect. We assembled the piezoelectric MNF sensors on gloves, bandages and stockings to fabricate devices that can detect different types of human motion, including finger motion and various flexing and extensions of an ankle. The firmly glued PSSs were tested on the glove and ankle respectively to detect and harvest the various movements and the output voltage was recorded as ∼1.5 V under jumping movement (one PSS) and ∼4.5 V for the clenched fist with five fingers bent concurrently (five PSSs). This research shows that piezoelectric MNFs not only have a huge impact on harvesting various external sources from mechanical energy but also can distinguish different motions as a self-powered active deformation sensor.
    其他題名: NANO
    其他題名: Nanotechnology
    出版者: England: IOP Publishing
    出版日期: 2016-03-04
    出處: Nanotechnology, 2016-03, Vol.27 (9), p.95401-95408
    資源來源: Institute of Physics Journals
    版權: 2016 IOP Publishing Ltd
    識別號: ISSN: 0957-4484
    識別號: EISSN: 1361-6528
    識別號: DOI: 10.1088/0957-4484/27/9/095401
    識別號: PMID: 26822295
    識別號: CODEN: NNOTER
    Appears in Collections:[Departmant of Mechanical Engineering ] journal & Dissertation

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