超越内在材料和装置结构的摩擦电能量收集动力改进的外在策略之旅:简要回顾

Ahmed Mahfuz Tamim , Yebin Lee , Jung Hwan Park , Geon-Tae Hwang , Chang Kyu Jeong
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引用次数: 0

摘要

物联网(IoT)、人工智能(AI)和大数据等技术的迅速发展,对自供电传感器和设备产生了前所未有的需求。虽然电池等传统能源仍在使用,但摩擦电纳米发电机(TENGs)已经成为一种有前途的替代能源,能够将机械能转化为电能,为这些传感器和设备提供动力。然而,TENGs的实际应用在很大程度上取决于其功率输出和效率。最有希望的方法包括优化材料选择、表面改性和化学改性技术,以增加摩擦电效应。此外,创新的设备设计和电荷机制已经发展到改善电荷产生和转移机制,从而提高TENG输出。本文综述了近年来在提高TENGs输出功率和功率密度方面的研究进展。本文并不仅仅关注材料选择、表面改性或化学改性等方法,而是探讨了基于固体-固体相互作用和交流(AC) teng的各种提高输出功率和功率密度的策略。这一全面的分析为当前TENG技术的发展提供了有价值的见解,为未来的创新铺平了道路,旨在为下一代应用创建高性能、自供电系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Journey across extrinsic tactics for power improvements of triboelectric energy harvesting beyond intrinsic materials and device structures: A concise review

Journey across extrinsic tactics for power improvements of triboelectric energy harvesting beyond intrinsic materials and device structures: A concise review
The swift evolution of technologies like the Internet of Things (IoT), artificial intelligence (AI), and big data has created an unparalleled need for self-powered sensors and devices. While traditional power sources such as batteries remain in use, triboelectric nanogenerators (TENGs) have emerged as a promising alternative, capable of converting mechanical energy into electrical energy to power these sensors and devices. However, the practical application of TENGs largely depends on their power output and efficiency. The most promising approaches involve the optimization of material selection, surface modification, and chemical modification techniques to increase the triboelectric effect. Additionally, innovative device designs and charge mechanisms have evolved to improve charge generation and transfer mechanisms, thereby boosting TENG output. This review examines recent progress in methods to improve the power output and power density of TENGs. Rather than concentrating solely on approaches such as material selection, surface modification, or chemical modification, this review explores various strategies for enhancing output power and power density based on solid-solid interactions and alternating current (AC) TENGs. This comprehensive analysis provides valuable insights into current developments in TENG technology, paving the way for future innovations aimed at creating high-performance, self-powered systems for next-generation applications.
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