Sahoo Mamina, Lai Sz-Nian, Wu Jyh-Ming, Wu Ming-Chung, Lai Chao-Sung
Department of Electronic Engineering, Chang Gung University, Guishan District, Taoyuan City 33302, Taiwan.
Department of Materials Science and Engineering, National Tsing Hua University, Hsinchu 30010, Taiwan.
Nanomaterials (Basel). 2021 Sep 1;11(9):2276. doi: 10.3390/nano11092276.
The continuous quest to enhance the output performance of triboelectric nanogenerators (TENGs) based on the surface charge density of the tribolayer has motivated researchers to harvest mechanical energy efficiently. Most of the previous work focused on the enhancement of negative triboelectric charges. The enhancement of charge density over positive tribolayer has been less investigated. In this work, we developed a layer-by-layer assembled multilayer graphene-based TENG to enhance the charge density by creatively introducing a charge trapping layer (CTL) AlO in between the positive triboelectric layer and conducting electrode to construct an attractive flexible TENG. Based on the experimental results, the optimized three layers of graphene TENG (3L-Gr-TENG) with CTL showed a 30-fold enhancement in output power compared to its counterpart, 3L-Gr-TENG without CTL. This remarkably enhanced performance can be ascribed to the synergistic effect between the optimized graphene layers with high dielectric CTL. Moreover, the device exhibited outstanding stability after continuous operation of >2000 cycles. Additionally, the device was capable of powering 20 green LEDs and sufficient to power an electronic timer with rectifying circuits. This research provides a new insight to improve the charge density of Gr-TENGs as energy harvesters for next-generation flexible electronics.
基于摩擦层表面电荷密度来不断提高摩擦电纳米发电机(TENGs)输出性能的追求,促使研究人员高效地收集机械能。此前的大多数工作都集中在增强负摩擦电荷上。对于正摩擦层电荷密度的增强研究较少。在这项工作中,我们开发了一种逐层组装的多层石墨烯基TENG,通过在正摩擦电层和导电电极之间创造性地引入电荷俘获层(CTL)AlO来增强电荷密度,从而构建出一种引人注目的柔性TENG。基于实验结果,带有CTL的优化三层石墨烯TENG(3L-Gr-TENG)相比于没有CTL的对应物3L-Gr-TENG,输出功率提高了30倍。这种显著增强的性能可归因于具有高介电常数CTL的优化石墨烯层之间的协同效应。此外,该器件在连续运行超过2000次循环后表现出出色的稳定性。此外,该器件能够为20个绿色发光二极管供电,并且足以通过整流电路为一个电子定时器供电。这项研究为提高作为下一代柔性电子能量收集器的Gr-TENGs的电荷密度提供了新的见解。