Su Wenyan, Fan Qunping, Guo Xia, Wu Jingnan, Zhang Maojie, Li Yongfang
Laboratory of Advanced Optoelectronic Materials, College of Chemistry, Chemical Engineering and Materials Science, Soochow University, Suzhou 215123, China.
Phys Chem Chem Phys. 2019 May 28;21(20):10660-10666. doi: 10.1039/c9cp01101c. Epub 2019 May 13.
As promising candidates for future applications in building-integrated photovoltaics, semitransparent organic solar cells (ST-OSCs) have made tremendous progress. However, power conversion efficiency (PCE) of the ST-OSCs is limited by intrinsic narrow absorption spectra concentrated in the near infrared region (NIR), weak extinction coefficient, and mismatched molecular energy levels of thin active layers. Here, an efficient ST-OSC based on a donor/acceptor electron pair of a trifluorinated polymer donor PBFTT and a tetrachlorinated acceptor IT-4Cl was fabricated. Due to halogenation, photovoltaic materials show stronger extinction coefficient, improved crystallinity and higher charge carrier mobility; PBFTT shows lower electronic energy levels, and IT-4Cl shows a red-shifted absorption spectrum. As a result, the PBFTT:IT-4Cl pair shows matched energy levels, complementary absorption spectra in the NIR region and a good blend morphology. Hence, as-cast OSCs based on PBFTT:IT-4Cl achieved a high PCE of 11.1% with a high short-circuit current density of 19.7 mA cm and a high fill factor of 73.9%. Owing to the complementary absorption spectra in the NIR region, high EQE values between 600 and 830 nm and a favourable transparency window between 400 and 600 nm, while the human eye has the highest sensitivity in the yellow-green wavelength region (500-600 nm), ST-OSCs using an ultra-thin (10-20 nm) Au cathode showed high PCEs of 7.9-9.1% at a high average visible transmittance of 37.3-27.6% in the photopic region. The PCE of 9.1% is one of the highest values reported in the literature for ST-OSCs without any extra treatment and with an AVT of more than 25% in the photopic region so far.
作为未来在建筑一体化光伏中应用的有前途的候选者,半透明有机太阳能电池(ST-OSCs)已经取得了巨大的进展。然而,ST-OSCs的功率转换效率(PCE)受到集中在近红外区域(NIR)的固有窄吸收光谱、弱消光系数以及薄有源层分子能级不匹配的限制。在此,制备了一种基于三氟聚合物供体PBFTT和四氯化受体IT-4Cl的供体/受体电子对的高效ST-OSC。由于卤化作用,光伏材料表现出更强的消光系数、改善的结晶度和更高的电荷载流子迁移率;PBFTT表现出更低的电子能级,而IT-4Cl表现出红移的吸收光谱。结果,PBFTT:IT-4Cl对表现出匹配的能级、在NIR区域互补的吸收光谱以及良好的共混形态。因此,基于PBFTT:IT-4Cl的铸态OSCs实现了11.1%的高PCE,具有19.7 mA cm的高短路电流密度和73.9%的高填充因子。由于在NIR区域互补的吸收光谱、600至830 nm之间的高外量子效率(EQE)值以及400至600 nm之间有利的透明窗口,而人眼在黄绿波长区域(500 - 600 nm)具有最高灵敏度,使用超薄(10 - 20 nm)金阴极的ST-OSCs在明视觉区域以37.3 - 27.6%的高平均可见光透射率显示出7.9 - 9.1%的高PCE。9.1%的PCE是迄今为止文献中报道的在没有任何额外处理且明视觉区域平均可见光透射率(AVT)超过25%的ST-OSCs的最高值之一。