Jiangsu Key Laboratory for Carbon-Based Functional Materials and Devices, Institute of Functional Nano and Soft Materials (FUNSOM), and Collaborative Innovation Center of Suzhou Nano Science and Technology, Soochow University , Suzhou 215123, P. R. China.
School of Materials Science and Engineering, Georgia Institute of Technology , Atlanta, Georgia 30332, United States.
Nano Lett. 2017 Jul 12;17(7):4240-4247. doi: 10.1021/acs.nanolett.7b01154. Epub 2017 Jun 9.
An integrated self-charging power unit, combining a hybrid silicon nanowire/polymer heterojunction solar cell with a polypyrrole-based supercapacitor, has been demonstrated to simultaneously harvest solar energy and store it. By efficiency enhancement of the hybrid nanowire solar cells and a dual-functional titanium film serving as conjunct electrode of the solar cell and supercapacitor, the integrated system is able to yield a total photoelectric conversion to storage efficiency of 10.5%, which is the record value in all the integrated solar energy conversion and storage system. This system may not only serve as a buffer that diminishes the solar power fluctuations from light intensity, but also pave its way toward cost-effective high efficiency self-charging power unit. Finally, an integrated device based on ultrathin Si substrate is demonstrated to expand its feasibility and potential application in flexible energy conversion and storage devices.
已展示了一种集成自充电电源单元,它将混合硅纳米线/聚合物异质结太阳能电池与基于聚吡咯的超级电容器相结合,以同时收集和存储太阳能。通过混合纳米线太阳能电池的效率提高和双功能钛薄膜作为太阳能电池和超级电容器的连接电极,该集成系统能够实现 10.5%的总光电转换到存储效率,这是所有集成太阳能转换和存储系统中的记录值。该系统不仅可以作为缓冲器来减轻光强引起的太阳能波动,还为低成本高效率自充电电源单元铺平了道路。最后,展示了一种基于超薄硅衬底的集成器件,以扩大其在灵活的能量转换和存储设备中的可行性和潜在应用。