首页> 外文期刊>ACS nano >Triboelectric nanogenerators as new energy technology for self-powered systems and as active mechanical and chemical sensors (Review)
【24h】

Triboelectric nanogenerators as new energy technology for self-powered systems and as active mechanical and chemical sensors (Review)

机译:摩擦电动纳米发电机作为自供电系统的新能源技术以及有源机械和化学传感器(综述)

获取原文
获取原文并翻译 | 示例
获取外文期刊封面目录资料

摘要

Triboelectrification is an effect that is known to each and every one probably since ancient Greek time, but it is usually taken as a negative effect and is avoided in many technologies. We have recently invented a triboelectric nanogenerator (TENG) that is used to convert mechanical energy into electricity by a conjunction of triboelectrification and electrostatic induction. As for this power generation unit, in the inner circuit, a potential is created by the triboelectric effect due to the charge transfer between two thin organic/inorganic films that exhibit opposite tribo-polarity; in the outer circuit, electrons are driven to flow between two electrodes attached on the back sides of the films in order to balance the potential. Since the most useful materials for TENG are organic, it is also named organic nanogenerator, which is the first using organic materials for harvesting mechanical energy. In this paper, we review the fundamentals of the TENG in the three basic operation modes: vertical contact-separation mode, in-plane sliding mode, and single-electrode mode. Ever since the first report of the TENG in January 2012, the output power density of TENG has been improved 5 orders of magnitude within 12 months. The area power density reaches 313 W/m2, volume density reaches 490 kW/m3, and a conversion efficiency of ~60% has been demonstrated. The TENG can be applied to harvest all kinds of mechanical energy that is available but wasted in our daily life, such as human motion, walking, vibration, mechanical triggering, rotating tire, wind, flowing water, and more. Alternatively, TENG can also be used as a self-powered sensor for actively detecting the static and dynamic processes arising from mechanical agitation using the voltage and current output signals of the TENG, respectively, with potential applications for touch pad and smart skin technologies. To enhance the performance of the TENG, besides the vast choices of materials in the triboelectric series, from polymer to metal and to fabric, the morphologies of their surfaces can be modified by physical techniques with the creation of pyramid-, square-, or hemisphere-based micro-or nanopatterns, which are effective for enhancing the contact area and possibly the triboelectrification. The surfaces of the materials can be functionalized chemically using various molecules, nanotubes, nanowires, or nanoparticles, in order to enhance the triboelectric effect. The contact materials can be composites, such as embedding nanoparticles in a polymer matrix, which may change not only the surface electrification but also the permittivity of the materials so that they can be effective for electrostatic induction. Therefore, there are numerous ways to enhance the performance of the TENG from the materials point of view. This gives an excellent opportunity for chemists and materials scientists to do extensive study both in the basic science and in practical applications. We anticipate that a better enhancement of the output power density will be achieved in the next few years. The TENG is possible not only for self-powered portable electronics but also as a new energy technology with potential to contribute to the world energy in the near future.
机译:摩擦起电是一种可能自古希腊时代以来就众所周知的效应,但通常被认为是一种负面效应,在许多技术中都避免使用。我们最近发明了一种摩擦电纳米发电机(TENG),该技术用于通过摩擦电和静电感应将机械能转化为电能。对于该发电单元,在内部电路中,由于摩擦电作用的产生是由于两个显示相反的摩擦极性的有机/无机薄膜之间的电荷转移引起的。在外部电路中,电子被驱动在贴在薄膜背面的两个电极之间流动,以平衡电势。由于用于TENG的最有用的材料是有机材料,因此也称为有机纳米发电机,这是第一种使用有机材料来收集机械能的材料。在本文中,我们回顾了TENG在三种基本操作模式下的基本原理:垂直接触分离模式,面内滑动模式和单电极模式。自2012年1月发布TENG的第一份报告以来,TENG的输出功率密度在12个月内提高了5个数量级。面积功率密度达到313 W / m2,体积密度达到490 kW / m3,转换效率约为60%。 TENG可用于收集可利用但浪费在我们日常生活中的各种机械能,例如人体运动,步行,振动,机械触发,轮胎旋转,风,流水等。或者,TENG也可以用作自供电传感器,分别使用TENG的电压和电流输出信号主动检测机械搅拌产生的静态和动态过程,并在触摸板和智能皮肤技术方面有潜在的应用。为了提高TENG的性能,除了在摩擦电系列中从聚合物到金属再到织物等多种摩擦材料之外,还可以通过物理技术修改金字塔表面,正方形或半球形来改变其表面形态。的微或纳米图案,可有效增加接触面积并可能增加摩擦起电作用。可以使用各种分子,纳米管,纳米线或纳米粒子对材料的表面进行化学功能化,以增强摩擦电效应。接触材料可以是复合材料,例如将纳米颗粒嵌入聚合物基质中,这不仅可以改变表面带电性,还可以改变材料的介电常数,从而可以有效地产生静电感应。因此,从材料的角度来看,有很多方法可以增强TENG的性能。这为化学家和材料科学家提供了一个在基础科学和实际应用中进行广泛研究的绝好机会。我们预计在未来几年中将可以更好地提高输出功率密度。 TENG不仅适用于自供电便携式电子产品,而且还可以作为一种新能源技术,有潜力在不久的将来为世界能源做出贡献。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号