Wang Xiaofei, Li Yuanzuo, Song Peng, Ma Fengcai, Yang Yanhui
College of Science , Northeast Forestry University , Harbin 150040 , Heilongjiang , China.
Department of Physics , Liaoning University , Shenyang 110036 , Liaoning , China.
J Phys Chem A. 2019 Aug 29;123(34):7401-7407. doi: 10.1021/acs.jpca.9b05249. Epub 2019 Aug 15.
The main purpose of this work is to explore the effect of graphene quantum dots (GR) filling the photosensitive layer. The multibranched dye JH-1 as the photoactive layer material was used to analyze the non-negligible role of graphene quantum dots from the perspectives of optimized structure, electrochemical parameters, optical properties, nonlinear optical (NLO) switch, and external electric field. The results demonstrated that the graphene quantum dots not only improve the optical properties of solar cells but also control the electron transfer in the photosensitive layer molecules under the manipulation of a specific external electric field. When the external electric field intensity is below 20 × 10 au, the excess electron orbital does not change. When the external electric field reaches 25 × 10 au, the excess electron orbital on the graphene quantum dots evolves. This discovery allows the electron transfer from the photosensitive layer, which should be controlled by the NLO switch. In addition, the optical properties of sensitizers showed regular evolution in the external electric field, which provides an effective way to improve the performance. Comprehensive analysis indicated that the doping of graphene quantum dots with the photosensitive layer can be used as a new way to improve the photoelectric conversion efficiency of solar cells.
这项工作的主要目的是探索石墨烯量子点(GR)填充光敏层的效果。使用多支化染料JH-1作为光活性层材料,从优化结构、电化学参数、光学性质、非线性光学(NLO)开关和外部电场等角度分析石墨烯量子点不可忽视的作用。结果表明,石墨烯量子点不仅能改善太阳能电池的光学性质,还能在特定外部电场的作用下控制光敏层分子中的电子转移。当外部电场强度低于20×10 au时,多余电子轨道不变。当外部电场达到25×10 au时,石墨烯量子点上的多余电子轨道发生演化。这一发现使得电子能够从光敏层转移,而这应由NLO开关控制。此外,敏化剂的光学性质在外部电场中呈现出规律的演化,这为提高性能提供了一种有效方法。综合分析表明,石墨烯量子点与光敏层的掺杂可作为提高太阳能电池光电转换效率的一种新方法。