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Triboelectric Nanogenerator: Structure, Mechanism, and Applications

机译:摩擦电纳米料:结构,机制和应用

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摘要

With the rapid development of the Internet of Things (IoT), the number of sensors utilized for the IoT is expected to exceed 200 billion by 2025. Thus, sustainable energy supplies without the recharging and replacement of the charge storage device have become increasingly important. Among various energy harvesters, the triboelectric nanogenerator (TENG) has attracted considerable attention due to its high instantaneous output power, broad selection of available materials, eco-friendly and inexpensive fabrication process, and various working modes customized for target applications. The TENG harvests electrical energy from wasted mechanical energy in the ambient environment. Three types of operational modes based on contact-separation, sliding, and freestanding are reviewed for two different configurations with a double-electrode and a single-electrode structure in the TENGs. Various charge transfer mechanisms to explain the operational principles of TENGs during triboelectrification are also reviewed for electron, ion, and material transfers. Thereafter, diverse methodologies to enhance the output power considering the energy harvesting efficiency and energy transferring efficiency are surveyed. Moreover, approaches involving not only energy harvesting by a TENG but also energy storage by a charge storage device are also reviewed. Finally, a variety of applications with TENGs are introduced. This review can help to advance TENGs for use in self-powered sensors, energy harvesters, and other systems. It can also contribute to assisting with more comprehensive and rational designs of TENGs for various applications.
机译:随着物联网的快速发展,到2025年,物联网使用的传感器数量预计将超过2000亿。因此,无需充电和更换电荷存储设备的可持续能源供应变得越来越重要。在各种能量采集器中,摩擦电纳米发电机(TENG)因其高瞬时输出功率、广泛的可用材料选择、环保且廉价的制造工艺以及针对目标应用定制的各种工作模式而备受关注。TENG从周围环境中浪费的机械能中获取电能。针对TENG中的两种不同配置(双电极和单电极结构),回顾了基于接触分离、滑动和独立的三种操作模式。本文还综述了电子、离子和材料转移的各种电荷转移机制,以解释TENS在摩擦带电过程中的工作原理。此后,考虑到能量收集效率和能量传输效率,对提高输出功率的各种方法进行了综述。此外,还回顾了不仅涉及TENG的能量收集,还涉及电荷存储装置的能量存储的方法。最后,介绍了TENG的各种应用。这项研究有助于推动TENG在自供电传感器、能源采集器和其他系统中的应用。它也有助于为各种应用提供更全面、更合理的TENG设计。

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