| Literature DB >> 32939914 |
Minchao Qin1, Haibo Xue2, Hengkai Zhang3, Hanlin Hu4, Kuan Liu3, Yuhao Li1, Zhaotong Qin1, Junjie Ma5, Hepeng Zhu6, Keyou Yan6, Guojia Fang5, Gang Li3, U-Ser Jeng7,8, Geert Brocks2,9, Shuxia Tao2, Xinhui Lu1.
Abstract
Two-step-fabricated FAPbI3 -based perovskites have attracted increasing attention because of their excellent film quality and reproducibility. However, the underlying film formation mechanism remains mysterious. Here, the crystallization kinetics of a benchmark FAPbI3 -based perovskite film with sequential A-site doping of Cs+ and GA+ is revealed by in situ X-ray scattering and first-principles calculations. Incorporating Cs+ in the first step induces an alternative pathway from δ-CsPbI3 to perovskite α-phase, which is energetically more favorable than the conventional pathways from PbI2 . However, pinholes are formed due to the nonuniform nucleation with sparse δ-CsPbI3 crystals. Fortunately, incorporating GA+ in the second step can not only promote the phase transition from δ-CsPbI3 to the perovskite α-phase, but also eliminate pinholes via Ostwald ripening and enhanced grain boundary migration, thus boosting efficiencies of perovskite solar cells over 23%. This work demonstrates the unprecedented advantage of the two-step process over the one-step process, allowing a precise control of the perovskite crystallization kinetics by decoupling the crystal nucleation and growth process.Entities:
Keywords: crystallization kinetics; perovskite solar cells; reaction enthalpy; sequential A-site doping; two-step method
Year: 2020 PMID: 32939914 DOI: 10.1002/adma.202004630
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849