Influence of halide choice on formation of low‐dimensional perovskite interlayer in efficient perovskite solar cells
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Authors
Liu, Xueping
Webb, Thomas
Ji, Kangyu
Smith, Joel A
Kilbride, Rachel C
Yavari, Mozhgan
Bi, Jinxin
Ren, Aobo
Huang, Yuanyuan
Wang, Zhuo
Shen, Yonglong
Shao, Guosheng
Sweeney, Stephen J
Hinder, Steven
Li, Hui
Lidzey, David G
Stranks, Samuel D
Greenham, Neil C
Silva, S Ravi P
Zhang, Wei
Publication Date
2022Journal Title
Energy & Environmental Materials
ISSN
2575-0356
Publisher
Wiley
Type
Article
This Version
AM
Metadata
Show full item recordCitation
Liu, X., Webb, T., Dai, L., Ji, K., Smith, J. A., Kilbride, R. C., Yavari, M., et al. (2022). Influence of halide choice on formation of low‐dimensional perovskite interlayer in efficient perovskite solar cells. Energy & Environmental Materials https://doi.org/10.1002/eem2.12321
Abstract
Recent advances in heterojunction and interfacial engineering of perovskite solar cells (PSCs)
have enabled great progress in developing highly efficient and stable devices. Nevertheless, the
effect of halide choice on the formation mechanism, crystallography and photoelectric
properties of the low-dimensional phase still requires further detailed study. In this work, we
present key insights into the significance of halide choice when designing passivation strategies
comprising large organic spacer salts, clarifying the effect of anions on the formation of quasi2D/3D heterojunctions. To demonstrate the importance of halide influences, we employ novel
neo-pentylammonium halide salts with different halide anions (neoPAX, X = I, Br or Cl). We
find that regardless of halide selection, iodide-based (neoPA)2(FA)(n-1)PbnI(3n+1) phases are
formed above the perovskite substrate, while the added halide anions diffuse and passivate the
perovskite bulk. In addition, we also find the halide choice has an influence on the degree of
dimensionality (n). Comparing the three halides, we find that chloride-based salts exhibit
superior crystallographic, enhanced carrier transport and extraction compared to the iodide and
bromide analogs. As a result, we report high power conversion efficiency in quasi-2D/3D PSCs,
which are optimal when using chloride salts, reaching up to 23.35% and improving long-term
stability.
Keywords
carrier dynamics, halide anions (I, Br, Cl), neo-pentylammonium halides, perovskite solar cells, quasi-2D, 3D heterojunction
Sponsorship
Royal Society (UF150033)
Embargo Lift Date
2100-01-01
Identifiers
External DOI: https://doi.org/10.1002/eem2.12321
This record's URL: https://www.repository.cam.ac.uk/handle/1810/332243
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