Hsieh Cheng-Ming, Hsiao Huan-Chang, Yamada Yuto, Wu Wei-Ru, Jeng U-Ser, Su Chun-Jen, Lin Ying-Sheng, Murata Michihisa, Chang Yuan Jay, Chuang Shih-Ching
Department of Applied Chemistry, National Yang Ming Chiao Tung University, 30010 Hsinchu, Taiwan.
Department of Applied Chemistry, Osaka Institute of Technology, Osaka 535-8585, Japan.
ACS Appl Mater Interfaces. 2022 Aug 31;14(34):39109-39119. doi: 10.1021/acsami.2c06354. Epub 2022 Aug 17.
The device efficiency of :-based nonfullerene organic solar cells is fast advanced recently. To maintain organic solar cells (OSCs) with high power conversion efficiency over 16% in long-term operation, however, remains a challenge. Here, a novel non-volatile additive, an open-cage [60]fullerene (), is incorporated into -based OSCs for high-performance with high durability. With optimized addition of 1.0 wt % , the PCE value of OSCs can be promoted to 16.5% from 15.0%. Most strikingly, such a high PCE performance can maintain nearly 100% for over 500 h at room temperature; at an elevated operation temperature of 80 °C, the PCE can be stabilized above 15.0% after 45 h of operation. Grazing incidence small- and wide- angle X-ray scattering studies reveal improved orientation and crystallinity of in a fractal-like network structure of in / films under in situ annealing, parallel to the enhanced electron mobility. Analysis of charge distributions lines up possible van der Waals interaction between the thienyl/carbonyl moiety of and difluorophenyl-based FIC-end groups of . This result is of great contrast to those devices with the best-selling as the additives─ might be of interest to be incorporated into future -based OSCs for concomitantly improved PCE and excellent stability.
基于[具体物质]的非富勒烯有机太阳能电池的器件效率最近迅速提高。然而,要在长期运行中保持功率转换效率超过16%的有机太阳能电池(OSCs)仍然是一项挑战。在此,一种新型非挥发性添加剂,即开孔[60]富勒烯([具体物质]),被掺入基于[具体物质]的OSCs中以实现高性能和高耐久性。通过优化添加1.0 wt%的[具体物质],[具体物质]基OSCs的PCE值可从15.0%提高到16.5%。最引人注目的是,如此高的PCE性能在室温下超过500小时内可保持近100%;在80°C的升高运行温度下,运行45小时后PCE可稳定在15.0%以上。掠入射小角和广角X射线散射研究表明,在原位退火下,[具体物质]在[具体物质]/[具体物质]薄膜中类似分形网络结构的[具体物质]的取向和结晶度得到改善,这与增强的电子迁移率平行。电荷分布分析表明,[具体物质]的噻吩基/羰基部分与[具体物质]的二氟苯基FIC端基之间可能存在范德华相互作用。这一结果与以畅销的[具体物质]作为添加剂的器件形成了极大对比——将[具体物质]掺入未来基于[具体物质]的OSCs中可能会同时提高PCE并具有出色的稳定性,这可能会引起人们的兴趣。