Hu Yawen, Li Qianying, Long Li, Yang Qianxi, Fu Shaoke, Liu Wenlin, Zhang Xuemei, Yang Huake, Hu Chenguo, Xi Yi
Department of Applied Physics, State Key Laboratory of Power Transmission Equipment & System Security and New Technology, Chongqing Key Laboratory of Soft Condensed Matter Physics and Smart Materials, Chongqing University, Chongqing 400044, P. R. China.
College of Chemistry and Molecular Engineering, Peking University, Beijing 100871, P. R. China.
ACS Appl Mater Interfaces. 2022 Nov 2;14(43):48636-48646. doi: 10.1021/acsami.2c12862. Epub 2022 Oct 23.
The triboelectric nanogenerator (TENG) as an ideal low-frequency mechanical energy harvester has received extensive attention, while low output charge density limits its application. A charge excitation strategy is one of the techniques to effectively improve the surface charge density of the TENG. However, there is little in-depth research on the matching factors between the TENG and excitation circuit. Herein, a soft-contact charge excitation rotary TENG (SCER-TENG) is developed to explore the matching mechanism of different charge excitation strategies. The total output power transferred by the voltage-multiplying circuit (VMC) is 2.13 times that of the full-wave bridge rectifier, which effectively improves the output performance of the SCER-TENG. Moreover, through the established capacitor model and the theoretically calculated maximum output charge of the SCER-TENG with VMC and Zener diodes (VMC-Z), it is found that the output of the Main TENG is mainly affected by capacitors and Zener diodes. The theories have been verified by experiments. After optimization, the output charge of the Main TENG with VMC-Z (1.54 μC) is 3850% higher than that without excitation (0.04 μC). The SCER-TENG successfully harvests low-speed (2.5 m s) wind energy to form a self-powered system. This work has crucial instructive implications for using charge excitation strategies to improve the performance of the rotary TENG.
摩擦纳米发电机(TENG)作为一种理想的低频机械能收集器受到了广泛关注,但其低输出电荷密度限制了其应用。电荷激发策略是有效提高TENG表面电荷密度的技术之一。然而,对于TENG与激发电路之间的匹配因素,目前还缺乏深入研究。在此,开发了一种软接触电荷激发旋转TENG(SCER-TENG)来探索不同电荷激发策略的匹配机制。倍压电路(VMC)传输的总输出功率是全波桥式整流器的2.13倍,有效提高了SCER-TENG的输出性能。此外,通过建立的电容器模型以及理论计算的带有VMC和齐纳二极管(VMC-Z)的SCER-TENG的最大输出电荷,发现主TENG的输出主要受电容器和齐纳二极管影响。这些理论已通过实验验证。经过优化,带有VMC-Z的主TENG的输出电荷(1.54 μC)比无激发时(0.04 μC)高出3850%。SCER-TENG成功收集了低速(2.5 m/s)风能,形成了一个自供电系统。这项工作对于利用电荷激发策略提高旋转TENG的性能具有至关重要的指导意义。