Guo Pengfei, Zhu Hongfu, Zhao Wenhao, Liu Chen, Zhu Liguo, Ye Qian, Jia Ning, Wang Hongyue, Zhang Xiuhai, Huang Wanxia, Vinokurov Vladimir A, Ivanov Evgenii, Shchukin Dmitry, Harvey Daniel, Ulloa Jose María, Hierro Adrian, Wang Hongqiang
State Key Laboratory of Solidification Processing, Center for Nano Energy Materials, School of Materials Science and Engineering, Northwestern Polytechnical University and Shaanxi Joint Laboratory of Graphene (NPU), Xi'an, 710072, China.
College of Materials Science and Engineering, Sichuan University, Chengdu, 610065, China.
Adv Mater. 2021 Sep;33(36):e2101590. doi: 10.1002/adma.202101590. Epub 2021 Jul 24.
Tackling the interfacial loss in emerged perovskite-based solar cells (PSCs) to address synchronously the carrier dynamics and the environmental stability, has been of fundamental and viable importance, while technological hurdles remain in not only creating such interfacial mediator, but the subsequent interfacial embedding in the active layer. This article reports a strategy of interfacial embedding of hydrophobic fluorinated-gold-clusters (FGCs) for highly efficient and stable PSCs. The p-type semiconducting feature enables the FGC efficient interfacial mediator to improve the carrier dynamics by reducing the interfacial carrier transfer barrier and boosting the charge extraction at grain boundaries. The hydrophobic tails of the gold clusters and the hydrogen bonding between fluorine groups and perovskite favor the enhancement of environmental stability. Benefiting from these merits, highly efficient formamidinium lead iodide PSCs (champion efficiency up to 24.02%) with enhanced phase stability under varied relative humidity (RH) from 40% to 95%, as well as highly efficient mixed-cation PSCs with moisture stability (RH of 75%) over 10 000 h are achieved. It is thus inspiring to advance the development of highly efficient and stable PSCs via interfacial embedding laser-generated additives for improved charge transfer/extraction and environmental stability.
解决新兴的钙钛矿基太阳能电池(PSC)中的界面损失以同步解决载流子动力学和环境稳定性问题,具有至关重要的基础意义和可行性,然而技术障碍不仅存在于制造这种界面介质方面,还存在于随后将其嵌入活性层的过程中。本文报道了一种用于高效稳定PSC的疏水性氟化金簇(FGC)界面嵌入策略。p型半导体特性使FGC成为高效的界面介质,通过降低界面载流子转移势垒和促进晶界处的电荷提取来改善载流子动力学。金簇的疏水尾部以及氟基团与钙钛矿之间的氢键有利于提高环境稳定性。受益于这些优点,实现了高效的甲脒碘化铅PSC(冠军效率高达24.02%),在40%至95%的不同相对湿度(RH)下具有增强的相稳定性,以及具有超过10000小时湿度稳定性(RH为75%)的高效混合阳离子PSC。因此,通过界面嵌入激光生成的添加剂来改善电荷转移/提取和环境稳定性,推动高效稳定PSC的发展是令人鼓舞的。