Hu Qikun, Rezaee Ehsan, Xu Wangping, Ramachandran Rajendran, Chen Qian, Xu Hu, El-Assaad Tarek, McGrath Dominic V, Xu Zong-Xiang
Department of Chemistry, Southern University of Science and Technology, Shenzhen, Guangdong, 518055, China.
Advanced Technology Institute, Department of Electrical and Electronic Engineering, University of Surrey, Guildford, Surrey, GU2 7XH, UK.
Small. 2021 Jan;17(1):e2005216. doi: 10.1002/smll.202005216. Epub 2020 Dec 8.
Semiconducting molecules have been employed to passivate traps extant in the perovskite film for enhancement of perovskite solar cells (PSCs) efficiency and stability. A molecular design strategy to passivate the defects both on the surface and interior of the CH NH PbI perovskite layer, using two phthalocyanine (Pc) molecules (NP-SC -ZnPc and NP-SC -TiOPc) is demonstrated. The presence of lone electron pairs on S, N, and O atoms of the Pc molecular structures provides the opportunity for Lewis acid-base interactions with under-coordinated Pb sites, leading to efficient defect passivation of the perovskite layer. The tendency of both NP-SC -ZnPc and NP-SC -TiOPc to relax on the PbI terminated surface of the perovskite layer is also studied using density functional theory (DFT) calculations. The morphology of the perovskite layer is improved due to employing the Pc passivation strategy, resulting in high-quality thin films with a dense and compact structure and lower surface roughness. Using NP-SC -ZnPc and NP-SC -TiOPc as passivating agents, it is observed considerably enhanced power conversion efficiencies (PCEs), from 17.67% for the PSCs based on the pristine perovskite film to 19.39% for NP-SC -TiOPc passivated devices. Moreover, PSCs fabricated based on the Pc passivation method present a remarkable stability under conditions of high moisture and temperature levels.
半导体分子已被用于钝化钙钛矿薄膜中存在的陷阱,以提高钙钛矿太阳能电池(PSC)的效率和稳定性。本文展示了一种分子设计策略,即使用两种酞菁(Pc)分子(NP-SC-ZnPc和NP-SC-TiOPc)来钝化CH₃NH₃PbI₃钙钛矿层表面和内部的缺陷。Pc分子结构中S、N和O原子上孤对电子的存在为与配位不足的Pb位点进行路易斯酸碱相互作用提供了机会,从而实现钙钛矿层的有效缺陷钝化。还使用密度泛函理论(DFT)计算研究了NP-SC-ZnPc和NP-SC-TiOPc在钙钛矿层PbI₂终止表面上弛豫的倾向。由于采用了Pc钝化策略,钙钛矿层的形貌得到改善,从而得到具有致密紧凑结构和较低表面粗糙度的高质量薄膜。使用NP-SC-ZnPc和NP-SC-TiOPc作为钝化剂,观察到功率转换效率(PCE)显著提高,基于原始钙钛矿薄膜的PSC的PCE从17.67%提高到NP-SC-TiOPc钝化器件的19.39%。此外,基于Pc钝化方法制造的PSC在高湿度和高温条件下具有显著的稳定性。