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用于人体运动能量收集的具有双面图案化表面的高性能摩擦电纳米发电机,由CO激光制备。

High-Performance Triboelectric Nanogenerator with Double-Side Patterned Surfaces Prepared by CO Laser for Human Motion Energy Harvesting.

作者信息

Lin Dong-Yi, Chung Chen-Kuei

机构信息

Department of Mechanical Engineering, National Cheng Kung University, Tainan 701, Taiwan.

出版信息

Micromachines (Basel). 2024 Oct 25;15(11):1299. doi: 10.3390/mi15111299.

DOI:10.3390/mi15111299
PMID:39597111
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11596297/
Abstract

The triboelectric nanogenerator (TENG) has demonstrated exceptional efficiency in harvesting diverse forms of mechanical energy and converting it into electrical energy. This technology is particularly valuable for powering low-energy electronic devices and self-powered sensors. Most traditional TENGs use single-sided patterned friction pairs, which restrict their effective contact area and overall performance. Here, we propose a novel TENG that incorporates microwave patterned aluminum (MC-Al) foil and microcone structured polydimethylsiloxane (MC-PDMS). This innovative design utilizes two PMMA molds featuring identical micro-hole arrays ablated by a CO laser, making it both cost-effective and easy to fabricate. A novel room imprinting technique has been employed to create the micromorphology of aluminum (Al) foil using the PMMA mold with shallower micro-hole arrays. Compared to TENGs with flat friction layers and single-side-patterned friction layers, the double-side-patterned MW-MC-TENG demonstrates superior output performance due to increased cone deformation and contact area. The open-circuit voltage of the MW-MC-TENG can reach 141 V, while the short-circuit current can attain 71.5 μA, corresponding to a current density of 2.86 µA/cm. The power density reaches 1.4 mW/cm when the resistance is 15 MΩ, and it can charge a 0.1 μF capacitor to 2.01 V in 2.28 s. In addition, the MW-MC-TENG can function as an insole device to harvest walking energy, power 11 LED bulbs, monitor step speed, and power a timer device. Therefore, the MW-MC-TENG has significant application potential in micro-wearable devices.

摘要

摩擦纳米发电机(TENG)在收集各种形式的机械能并将其转化为电能方面已展现出卓越的效率。这项技术对于为低能耗电子设备和自供电传感器供电尤为重要。大多数传统的TENG使用单面图案化的摩擦副,这限制了它们的有效接触面积和整体性能。在此,我们提出了一种新型的TENG,它结合了微波图案化铝(MC-Al)箔和微锥结构聚二甲基硅氧烷(MC-PDMS)。这种创新设计利用了两个具有相同微孔阵列的PMMA模具,该微孔阵列由CO激光烧蚀而成,既经济又易于制造。采用了一种新颖的室温压印技术,使用具有较浅微孔阵列的PMMA模具来制造铝(Al)箔的微观形貌。与具有平坦摩擦层和单面图案化摩擦层的TENG相比,双面图案化的MW-MC-TENG由于锥形变和接触面积增加而展现出卓越的输出性能。MW-MC-TENG的开路电压可达141 V,短路电流可达71.5 μA,对应电流密度为2.86 µA/cm²。当电阻为15 MΩ时,功率密度达到1.4 mW/cm²,并且它可以在2.28 s内将一个0.1 μF的电容器充电至2.01 V。此外,MW-MC-TENG可以用作鞋垫装置来收集行走能量,为11个发光二极管灯泡供电,监测步速,并为一个定时器装置供电。因此,MW-MC-TENG在微型可穿戴设备中具有巨大的应用潜力。

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