Zhu Liangzheng, Xu Shendong, Liu Guozhen, Liu Long, Zhou Han, Ai Zhiqiang, Pan Xu, Zhang Fapei
Anhui Key Laboratory of Low-Energy Quantum Materials and Devices, High Magnetic Field Laboratory, Hefei Institutes of Physical Science, Chinese Academy of Sciences Hefei 230031 P. R. China
Key Laboratory of Photovoltaic and Energy Conservation Materials, Institute of Solid State Physics, Hefei Institutes of Physical Science, Chinese Academy of Sciences Hefei 230031 P. R. China
Chem Sci. 2024 Mar 13;15(15):5642-5652. doi: 10.1039/d3sc06746g. eCollection 2024 Apr 17.
Passivation treatment is an effective method to suppress various defects in perovskite solar cells (PSCs), such as cation vacancies, under-coordinated Pb or I, and Pb-I antisite defects. A thorough understanding of the diversified impacts of different defect passivation methods (DPMs) on the device performance will be beneficial for making wise DPM choices. Herein, we choose a hydrophobic Lewis acid tris(pentafluorophenyl)borane (BCF), which can dissolve in both the perovskite precursor and anti-solvent, as the passivation additive. BCF treatment can immobilize organic cations forming hydrogen bonds. Three kinds of DPMs based on BCF are applied to modify perovskite films in this work. It is found that the best DPM with BCF dissolved in anti-solvent can not only passivate multiple defects in perovskite, but also inhibit δ phase perovskite and improve the stability of devices. Meanwhile, DPM with BCF dissolved in both the perovskite precursor and anti-solvent can cause cracks and voids in perovskite films and deteriorate device performance, which should be avoided in practical applications. As a result, PSCs based on optimal DPMs of BCF present an increased efficiency of 22.86% with negligible hysteresis as well as improved overall stability. This work indicates that the selection and optimization of DPMs have an equally important influence on the photovoltaic performance of PSCs as the selection of passivation additives.
钝化处理是抑制钙钛矿太阳能电池(PSC)中各种缺陷的有效方法,这些缺陷包括阳离子空位、配位不足的Pb或I以及Pb-I反位缺陷。深入了解不同缺陷钝化方法(DPM)对器件性能的多样化影响,将有助于明智地选择DPM。在此,我们选择一种疏水性路易斯酸三(五氟苯基)硼烷(BCF)作为钝化添加剂,它既能溶解在钙钛矿前驱体中,也能溶解在反溶剂中。BCF处理可以通过形成氢键固定有机阳离子。在这项工作中,基于BCF的三种DPM被用于修饰钙钛矿薄膜。研究发现,将BCF溶解在反溶剂中的最佳DPM不仅可以钝化钙钛矿中的多种缺陷,还能抑制δ相钙钛矿并提高器件的稳定性。同时,将BCF同时溶解在钙钛矿前驱体和反溶剂中的DPM会导致钙钛矿薄膜出现裂纹和空洞,从而使器件性能恶化,在实际应用中应避免使用。结果,基于BCF最佳DPM的PSC效率提高到22.86%,滞后现象可忽略不计,整体稳定性也得到改善。这项工作表明,DPM的选择和优化对PSC光伏性能的影响与钝化添加剂的选择同样重要。