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由电晕放电激励的多层介电层摩擦纳米发电机。

A multi-dielectric-layered triboelectric nanogenerator as energized by corona discharge.

机构信息

Beijing Institute of Nanoenergy and Nanosystems, Chinese Academy of Sciences, Beijing 100083, China.

出版信息

Nanoscale. 2017 Jul 13;9(27):9668-9675. doi: 10.1039/c7nr02249b.

Abstract

Triboelectric nanogenerators (TENGs) have been invented recently for meeting the power requirements of small electronics and potentially solving the worldwide energy crisis. Here, we developed a vertical contact-separation mode TENG based on a novel multi-dielectric-layered (MDL) structure, which was comprised of parylene C, polyimide and SiO films. By using the corona discharge approach, the surface charge density was enhanced to as high as 283 μC m, and especially the open-circuit voltage could be increased by a factor of 55 compared with the original value. Furthermore, the theoretical models were built to reveal the output characteristics and store the electrostatic energy of the TENG. The influences of the structural parameters and operation conditions including the effective dielectric thickness, dielectric constant, gap distance and air breakdown voltage were investigated systematically. It was found that the output performances such as the peak voltage and power density are approximately proportional to the thickness of the MDL film, but they would be restricted by the air breakdown voltage. These unique structures and models could be used to deepen the understanding of the fundamental mechanism of TENGs, and serve as an important guide for designing high performance TENGs.

摘要

摩擦纳米发电机(TENG)最近被发明出来,以满足小型电子设备的电力需求,并有可能解决全球能源危机。在这里,我们开发了一种基于新型多层介电层(MDL)结构的垂直接触-分离模式 TENG,该结构由聚对二甲苯 C、聚酰亚胺和 SiO 薄膜组成。通过使用电晕放电方法,表面电荷密度可高达 283 μC m,特别是开路电压可增加 55 倍,与原始值相比。此外,建立了理论模型来揭示 TENG 的输出特性和存储静电能量。系统地研究了结构参数和操作条件(包括有效介电厚度、介电常数、间隙距离和空气击穿电压)的影响。结果表明,输出性能(如峰值电压和功率密度)与 MDL 膜的厚度大致成正比,但会受到空气击穿电压的限制。这些独特的结构和模型可以用来加深对 TENG 基本机制的理解,并为设计高性能 TENG 提供重要指导。

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