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High performance of multi-layered triboelectric nanogenerators for mechanical energy harvesting

机译:多层摩擦纳米液的高性能实现机械能量收获

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摘要

Triboelectric nanogenerators have been invented recently as a power supply source for small electronics and exhibit a high potential to solve the world energy crisis. Herein, triboelectric nanogenerators with different electrodes and a multi-layered dielectric structure based on vertical contact separation mode were fabricated for energy harvesting. The triboelectric nanogenerator Model 4 with aluminum electrodes in both conductive layers have four times higher output voltage and reaches the highest voltage in a much shorter time than the other triboelectric nanogenerator models. Nine triboelectric nanogenerators with a layer of polypropylene non-woven fabric and another layer of Kapton film were fabricated to investigate the impact of layered structure on the triboelectric nanogenerator performance. The 3 PP-2K triboelectric nanogenerator has a 191 V of output voltage, 6 V of charge capacity, and 8.75 W/m(2) of power generation performance, which are higher than those of other triboelectric nanogenerators. This study shows that the output performance depends on both electrode and different layers of dielectric materials and also proposes an effective approach to designing high-performance mechanical energy conversion devices for practical applications in the field of self-operating wearable systems. (C) 2021 Elsevier Ltd. All rights reserved.
机译:摩擦纳米发电机已被最近发明作为小型电子设备的供电电源,并表现出高电位解决世界能源危机。在本文中,与不同的电极和基于垂直接触分离模式的多层电介质结构的摩擦纳米发电机被制造为能量收集。摩擦电纳米发电机模型4具有在两个导电层的铝电极具有高四倍的输出电压并到达比其它摩擦纳米发生器型号短得多的时间的最高电压。九个与聚丙烯非织造织物层和卡普顿薄膜的另一层的摩擦纳米发电机被制造来调查层状结构上的摩擦纳米发生器性能的影响。 3 PP-2K摩擦纳米发生器具有191 V的输出电压的,充电容量6 V,和8.75 W / M(2)的发电性能,其比其他摩擦纳米发电机的更高。这项研究表明,输出性能取决于两个电极和介电材料的不同层上,并且还提出了一种有效的方法来设计用于自工作可穿戴系统的领域实际应用的高性能机械能量转换装置。 (c)2021 elestvier有限公司保留所有权利。

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