Liu Pengyun, Li Xuejin, Cai Tonghui, Xing Wei, Yang Naitao, Arandiyan Hamidreza, Shao Zongping, Wang Shaobin, Liu Shaomin
School of Materials Science and Engineering, State Key Laboratory of Heavy Oil Processing, China University of Petroleum (East China), Qingdao, 266580, People's Republic of China.
School of Chemistry and Chemical Engineering, Shandong University of Technology, Zibo, 255049, People's Republic of China.
Nanomicro Lett. 2024 Oct 10;17(1):35. doi: 10.1007/s40820-024-01500-7.
Layer-structured Ruddlesden-Popper (RP) perovskites (RPPs) with decent stability have captured the imagination of the photovoltaic research community and bring hope for boosting the development of perovskite solar cell (PSC) technology. However, two-dimensional (2D) or quasi-2D RP PSCs are encountered with some challenges of the large exciton binding energy, blocked charge transport and poor film quality, which restrict their photovoltaic performance. Fortunately, these issues can be readily resolved by rationally designing spacer cations of RPPs. This review mainly focuses on how to design the molecular structures of organic spacers and aims to endow RPPs with outstanding photovoltaic applications. We firstly elucidated the important roles of organic spacers in impacting crystallization kinetics, charge transporting ability and stability of RPPs. Then we brought three aspects to attention for designing organic spacers. Finally, we presented the specific molecular structure design strategies for organic spacers of RPPs aiming to improve photovoltaic performance of RP PSCs. These proposed strategies in this review will provide new avenues to develop novel organic spacers for RPPs and advance the development of RPP photovoltaic technology for future applications.
具有良好稳定性的层状Ruddlesden-Popper(RP)钙钛矿(RPPs)激发了光伏研究界的想象力,并为推动钙钛矿太阳能电池(PSC)技术的发展带来了希望。然而,二维(2D)或准2D RP PSC面临着一些挑战,如大的激子结合能、电荷传输受阻和薄膜质量差,这些都限制了它们的光伏性能。幸运的是,通过合理设计RPPs的间隔阳离子可以很容易地解决这些问题。本综述主要关注如何设计有机间隔体的分子结构,旨在赋予RPPs出色的光伏应用性能。我们首先阐明了有机间隔体在影响RPPs的结晶动力学、电荷传输能力和稳定性方面的重要作用。然后我们提出了设计有机间隔体需要关注的三个方面。最后,我们提出了RPPs有机间隔体的具体分子结构设计策略,旨在提高RP PSC的光伏性能。本综述中提出的这些策略将为开发用于RPPs的新型有机间隔体提供新途径,并推动RPP光伏技术在未来应用中的发展。