- Zhao, Lichen;
- Tang, Pengyi;
- Luo, Deying;
- Dar, M Ibrahim;
- Eickemeyer, Felix T;
- Arora, Neha;
- Hu, Qin;
- Luo, Jingshan;
- Liu, Yuhang;
- Zakeeruddin, Shaik Mohammed;
- Hagfeldt, Anders;
- Arbiol, Jordi;
- Huang, Wei;
- Gong, Qihuang;
- Russell, Thomas P;
- Friend, Richard H;
- Grätzel, Michael;
- Zhu, Rui
There exists a considerable density of interaggregate grain boundaries (GBs) and intra-aggregate GBs in polycrystalline perovskites. Mitigation of intra-aggregate GBs is equally notable to that of interaggregate GBs as intra-aggregate GBs can also cause detrimental effects on the photovoltaic performances of perovskite solar cells (PSCs). Here, we demonstrate full-scale GB mitigation ranging from nanoscale intra-aggregate to submicron-scale interaggregate GBs, by modulating the crystallization kinetics using a judiciously designed brominated arylamine trimer. The optimized GB-mitigated perovskite films exhibit reduced nonradiative recombination, and their corresponding mesostructured PSCs show substantially enhanced device efficiency and long-term stability under illumination, humidity, or heat stress. The versatility of our strategy is also verified upon applying it to different categories of PSCs. Our discovery not only specifies a rarely addressed perspective concerning fundamental studies of perovskites at nanoscale but also opens a route to obtain high-quality solution-processed polycrystalline perovskites for high-performance optoelectronic devices.