| Literature DB >> 34676933 |
Jiupeng Cao1, Hok-Leung Loi1, Yang Xu2, Xuyun Guo1, Naixiang Wang1, Chun-Ki Liu1, Tianyue Wang1, Haiyang Cheng1, Ye Zhu1, Mitch Guijun Li2, Wai-Yeung Wong3,4, Feng Yan1,3.
Abstract
Sn-Pb mixed perovskites with bandgaps in the range of 1.1-1.4 eV are ideal candidates for single-junction solar cells to approach the Shockley-Queisser limit. However, the efficiency and stability of Sn-Pb mixed-perovskite solar cells (PSCs) still lag far behind those of Pb-based counterparts due to the easy oxidation of Sn2+ . Here, a reducing agent 4-hydrazinobenzoic acid is introduced as an additive along with SnF2 to suppress the oxidation of Sn2+ . Meanwhile, a vertical Pb/Sn compositional gradient is formed spontaneously after an antisolvent treatment due to different solubility and crystallization kinetics of Sn- and Pb-based perovskites and it can be finely tuned by controlling the antisolvent temperature. Because the band structure of a perovskite is dependent on its composition, graded vertical heterojunctions are constructed in the perovskite films with a compositional gradient, which can enhance photocarrier separation and suppress carrier recombination in the resultant PSCs. Under optimal fabrication conditions, the Sn-Pb mixed PSCs show power conversion efficiency up to 22% along with excellent stability during light soaking.Entities:
Keywords: Sn-Pb mixed perovskite; compositional gradients; heterojunctions; perovskite solar cells
Year: 2021 PMID: 34676933 DOI: 10.1002/adma.202107729
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849