Qiu Fazheng, Liu Qiuju, Liu Yanfeng, Wu Jinpeng
School of Materials Science and Engineering, NingboTech University, Ningbo, 315100, P. R. China.
College of Materials and Textile Engineering, Nanotechnology Research Institute, Jiaxing University, Jiaxing, 314001, China.
Small. 2023 Dec;19(50):e2304834. doi: 10.1002/smll.202304834. Epub 2023 Aug 26.
Iodine vacancies and uncoordinated Pb defects existing at the perovskite surface have been widely demonstrated to induce deep-level defects, which can greatly limit improvement of the efficiency and stability of perovskite solar cells (PSCs). In this work, a novel strategy is proposed for functionalizing perovskite surface by using trimethylsulfoxonium iodide (TMSI), which can enhance the defect formation energy and inhibit Pb defects. Meanwhile, TMSI modification also can fill the iodine vacancies of perovskite surface-terminating ends. Consequently, the optimized device shows the improved charge dynamics and the reduced energy losses, achieving a champion efficiency of up to 24.03% along with excellent air-storage and thermal stabilities. This work offers guidelines for more efficient and stable PSCs based on the management of interface defects.
钙钛矿表面存在的碘空位和未配位的铅缺陷已被广泛证明会诱导产生深能级缺陷,这会极大地限制钙钛矿太阳能电池(PSC)效率和稳定性的提升。在这项工作中,提出了一种通过使用碘化三甲基锍(TMSI)对钙钛矿表面进行功能化的新策略,该策略可以提高缺陷形成能并抑制铅缺陷。同时,TMSI修饰还可以填充钙钛矿表面端基的碘空位。因此,优化后的器件显示出改善的电荷动力学和降低的能量损失,实现了高达24.03%的冠军效率以及出色的空气存储和热稳定性。这项工作为基于界面缺陷管理的更高效、稳定的PSC提供了指导方针。