State Key Laboratory of Electronic Thin Films and Integrated Devices, University of Electronic Science and Technology of China, Chengdu 610054, People's Republic of China.
Nanotechnology. 2016 Jul 29;27(30):30LT01. doi: 10.1088/0957-4484/27/30/30LT01. Epub 2016 Jun 20.
The reported flexible and transparent triboelectric generator (FTTG) can only output ultralow power density (∼2 μW cm(-2)), which has seriously hindered its further development and application. The low power density of FTTG is mainly limited by the transparent material and the electrode structure. Herein, for the first time, a FTTG with a superior power density of 60.7 μW cm(-2) has been fabricated by designing asymmetric electrodes where graphene and indium tin oxide (ITO) act as top and bottom electrodes respectively. Moreover, the performance of FTTG with graphene/ITO (G/I) asymmetric electrodes (GI-FTTG) almost remains unchanged even after 700 cycles, indicating excellent mechanical stability. The excellent performance of GI-FTTG can be attributed to the suitable materials and unique asymmetric electrode structure: the extraordinary flexibility of the graphene top electrode ensures the GI-FTTG excellent mechanical robustness and stability even after longer cycles, and the bottom electrode with very low sheet resistance guarantees lower internal resistance and higher production rate of induction charges to obtain higher output power density. It shows that light-emitting diodes (LED) can be easily powered by GI-FTTG, which demonstrates that the GI-FTTG is very promising for harvesting electrical energy from human activities by using flexible and transparent devices.
所报道的柔性透明摩擦纳米发电机(FTTG)的输出功率密度极低(约 2 μW cm(-2)),严重限制了其进一步的发展和应用。FTTG 的低功率密度主要受限于透明材料和电极结构。在此,我们首次通过设计具有不对称电极的 FTTG 来获得 60.7 μW cm(-2) 的优异功率密度,其中石墨烯和氧化铟锡(ITO)分别作为顶电极和底电极。此外,具有石墨烯/ITO(G/I)不对称电极的 FTTG(GI-FTTG)的性能在经过 700 次循环后几乎保持不变,表明具有优异的机械稳定性。GI-FTTG 的优异性能归因于合适的材料和独特的不对称电极结构:顶部石墨烯电极的非凡柔韧性确保了 GI-FTTG 即使在更长的循环后仍具有出色的机械坚固性和稳定性,而底部电极的低电阻确保了更低的内阻和更高的感应电荷产生率,从而获得更高的输出功率密度。实验结果表明,GI-FTTG 可以轻松为发光二极管(LED)供电,这表明 GI-FTTG 非常有前景,可通过使用灵活透明的设备从人体活动中收集电能。