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Highly flexible self-powered sensors based on printed circuit board technology for human motion detection and gesture recognition

机译:基于印刷电路板技术的高度灵活的自供电传感器,用于人体运动检测和手势识别

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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) microano 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 similar to 1.5 V under jumping movement (one PSS) and similar to 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.
机译:在本文中,我们演示了基于印刷电路板(PCB)技术的自供电传感器(PSS)和具有聚偏二氟乙烯(PVDF)微/纳米纤维(MNFs)的直接写入,近场静电纺丝(NFES)的新集成)作为原始资料。对于可承受的批量生产,非常需要与PCB技术集成。此外,我们系统地研究了间隔为0.15 mm至0.40 mm的电极对所得PSS输出电压和电流的影响。结果表明,在应变为0.5%和5 Hz的情况下,间隙间隔为0.15 mm的PSS产生的最大输出电压为3 V,最大输出电流为220 nA。在相同的尺寸约束下,MNF大规模串联(通过跨间隙的连续MNF积累)和并联(通过平行MNF在同一间隙的积累)大规模连接。最后,在具有不同间隔电极的柔性聚合物中的封装表明,可以通过以串联/并联方式集体有效地连接MNF来实现高电流输出和高电压输出,从而实现电叠加。通过将设备卷成圆柱形,实验上实现了基于协同效应的PSS的进一步改进,由于协同效应,功率输出增加了130%。我们将压电式MNF传感器组装在手套,绷带和长筒袜上,制造出可以检测不同类型的人体运动的设备,包括手指运动以及脚踝的各种弯曲和伸展。分别在手套和脚踝上测试了牢固粘合的PSS,以检测和检测采集各种动作,在跳跃动作下(一个PSS)记录的输出电压约为1.5 V,对于同时弯曲五个手指的握紧拳头,该电压记录为4.5 V(五个PSS)。这项研究表明,压电MNFs不仅对从机械能中收集各种外部资源有巨大影响,而且可以作为自供电主动变形传感器来区分不同的运动。

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