Department of Organic Chemistry, Faculty of Chemistry, University of Murcia, 30100 Murcia, Spain.
Institute of Advanced Materials, University Jaume I, Avenida de Vicent Sos Baynat, s/n, 12071 Castelló de la Plana, Spain.
ACS Appl Mater Interfaces. 2023 May 10;15(18):22310-22319. doi: 10.1021/acsami.2c23010. Epub 2023 Apr 26.
Interfaces between photoactive perovskite layer and selective contacts play a key role in the performance of perovskite solar cells (PSCs). The properties of the interface can be modified by the introduction of molecular interlayers between the halide perovskite and the transporting layers. Herein, two novel structurally related molecules, 1,3,5-tris(α-carbolin-6-yl)benzene () and the hexamethylated derivative of truxenotris(7-azaindole) (), are reported. Both molecules have the ability to self-assemble through reciprocal hydrogen bond interactions, but they have different degrees of conformational freedom. The benefits of combining these tripodal 2D-self-assembled small molecular materials with well-known hole transporting layers (HTLs), such as PEDOT:PSS and PTAA, in PSCs with inverted configuration are described. The use of these molecules, particularly the more rigid , enhanced the charge extraction efficiency and reduced the charge recombination. Consequently, an improved photovoltaic performance was achieved in comparison to the devices fabricated with the standard HTLs.
钙钛矿层和选择性接触之间的界面在钙钛矿太阳能电池(PSCs)的性能中起着关键作用。通过在卤化物钙钛矿和传输层之间引入分子夹层,可以修饰界面的性质。本文报道了两种新型结构相关的分子,1,3,5-三(α-咔啉-6-基)苯()和三嗪三(7-氮杂吲哚)的六甲基衍生物()。这两种分子都具有通过相互氢键相互作用自组装的能力,但它们的构象自由度不同。将这些三足 2D 自组装小分子材料与众所周知的空穴传输层(HTLs),如 PEDOT:PSS 和 PTAA,结合在倒置结构的 PSCs 中的优势进行了描述。使用这些分子,特别是更刚性的,提高了电荷提取效率并减少了电荷复合。因此,与使用标准 HTLs 制造的器件相比,实现了更好的光伏性能。