posted on 2021-12-29, 07:03authored byHualin Zheng, Ting Zhang, Yafei Wang, Canzhou Li, Zhenhuang Su, Ze Wang, Hao Chen, Shihao Yuan, Yiding Gu, Long Ji, Jian Li, Shibin Li
Despite two-dimensional (2D) Ruddlesden–Popper-phase
layered
perovskites (RPLPs) exhibiting excellent environmental stability,
most solar cells based on 2D RPLP films are fabricated in a controlled
inert atmosphere. Meanwhile, the poor charge transport of 2D RPLP
films owing to the unfavorable phase arrangement and defects limits
the efficiency of 2D RPLP solar cells. Here, we fabricate high-efficiency
2D RPLP solar cells in ambient air assisted by a zwitterion (ZW) additive.
We show that the ZW additive suppresses the formation of the bottom
2D phases (n ≤ 2) and the top 3D-like phases
in 2D RPLP films. These 2D phases usually grow parallel to the substrate
and act as trap sites that inhibit charge transport in the vertical
direction. The 3D-like phases, on the other hand, aggravate the long-term
stability due to the intrinsic instability of MA+ cations.
With improved phase distribution, crystal orientation, and reduced
trap states in 2D RPLP films, efficient charge transport is obtained.
Finally, a record-high open-circuit voltage (Voc) of 1.19 V and a power conversion efficiency of 17.04% with
an enhanced stability are achieved for (BA0.9PEA0.1)2MA3Pb4I13-based (n = 4) solar cells fabricated under high humidity (∼65%
RH).