Skip to main content

High-phase purity two-dimensional perovskites with 17.3% efficiency enabled by interface engineering of hole transport layer

Author(s): Sidhik, Siraj; Wang, Yafei; Li, Wenbin; Zhang, Hao; Zhong, Xinjue; et al

Download
To refer to this page use: http://arks.princeton.edu/ark:/88435/pr10z70w9f
Abstract: State-of-the-art p-i-n-based 3D perovskite solar cells (PSCs) use nickel oxide (NiOX) as an efficient hole transport layer (HTL), achieving efficiencies >22%. However, translating this to phase-pure 2D perovskites has been unsuccessful. Here, we report 2D phase-pure Ruddlesden-Popper BA2MA3Pb4I13 perovskites with 17.3% efficiency enabled by doping the NiOX with Li. Our results show that progressively increasing the doping concentration transforms the photoresistor behavior to a typical diode curve, with an increase in the average efficiency from 2.53% to 16.03% with a high open-circuit voltage of 1.22 V. Analysis reveals that Li doping of NiOX significantly improves the morphology, crystallinity, and orientation of 2D perovskite films and also affords a superior band alignment, facilitating efficient charge extraction. Finally, we demonstrate that 2D PSCs with Li-doped NiOX exhibit excellent photostability, with T99 = 400 h at 1 sun and T90 of 100 h at 5 suns measured at relative humidity of 60% ± 5% without the need for external thermal management.
Publication Date: 20-Oct-2021
Citation: Sidhik, Siraj, Wang, Yafei, Li, Wenbin, Zhang, Hao, Zhong, Xinjue, Agrawal, Ayush, Hadar, Ido, Spanopoulos, Ioannis, Mishra, Anamika, Traoré, Boubacar, Samani, Mohammad HK, Katan, Claudine, Marciel, Amanda B, Blancon, Jean-Christophe, Even, Jacky, Kahn, Antoine, Kanatzidis, Mercouri G, Mohite, Aditya D. (2021). High-phase purity two-dimensional perovskites with 17.3% efficiency enabled by interface engineering of hole transport layer. Cell Reports Physical Science, 2 (10), 100601 - 100601. doi:10.1016/j.xcrp.2021.100601
DOI: doi:10.1016/j.xcrp.2021.100601
ISSN: 2666-3864
Language: en
Type of Material: Journal Article
Journal/Proceeding Title: Cell Reports Physical Science
Version: Final published version. This is an open access article.



Items in OAR@Princeton are protected by copyright, with all rights reserved, unless otherwise indicated.