School of Advanced Materials, Peking University Shenzhen Graduate School , Peking University , Shenzhen 518055 , China.
Department of Materials Science and Engineering , Southern University of Science and Technology (SUSTech) , No. 1088, Xueyuan Road , Nanshan, Shenzhen , Guangdong 518055 , China.
ACS Appl Mater Interfaces. 2019 Sep 11;11(36):33505-33514. doi: 10.1021/acsami.9b12583. Epub 2019 Aug 29.
A novel nanomaterial, bismuth oxychloride nanoplates (BiOCl NPs), was first applied in organic solar cells (OSCs) as hole transporting layers (HTLs). It is worth noting that the BiOCl NPs can be facilely synthesized at ∼1/200 of the cost of the commercial PEDOT:PSS and well dissolved in green solvents. Different from the PEDOT:PSS interlayer, the deposition of BiOCl HTL is free of post-treatment at elevated temperature, which reduces device fabrication complexity. To demonstrate the universality of BiOCl in improving photovoltaic performance, OSCs containing various representative active layers were investigated. The power conversion efficiencies (PCEs) of the P3HT:PCBM, PTB7-Th:PCBM, and PM6:Y6-based OSCs with the BiOCl HTL boosted from 3.62, 8.78, and 15.63 to 4.24, 9.92, and 16.11%, respectively, compared to the PEDOT:PSS-based ones. It was found that the superior performances of the BiOCl-based OSCs are mainly attributed to the sufficient oxygen vacancies and improved interfacial contact. Moreover, the BiOCl-based OSCs show a much better stability than the cells with the PEDOT:PSS interfacial layer.
一种新型纳米材料,氧化铋纳米片(BiOCl NPs),首次被应用于有机太阳能电池(OSCs)作为空穴传输层(HTLs)。值得注意的是,BiOCl NPs 可以以商业 PEDOT:PSS 的约 1/200 的成本轻松合成,并且可以很好地溶解在绿色溶剂中。与 PEDOT:PSS 层不同,BiOCl HTL 的沉积无需在高温下进行后处理,这降低了器件制造的复杂性。为了证明 BiOCl 在提高光伏性能方面的普遍性,研究了含有各种代表性活性层的 OSCs。与基于 PEDOT:PSS 的 OSCs 相比,含有 BiOCl HTL 的 P3HT:PCBM、PTB7-Th:PCBM 和 PM6:Y6 基 OSCs 的功率转换效率(PCE)分别从 3.62%、8.78%和 15.63%提高到 4.24%、9.92%和 16.11%。研究发现,BiOCl 基 OSCs 的优异性能主要归因于充足的氧空位和改善的界面接触。此外,BiOCl 基 OSCs 比具有 PEDOT:PSS 界面层的电池具有更好的稳定性。