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Park, Noejung
Computational Physics & Electronic Structure Lab.
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First-principles identification of the charge-shifting mechanism and ferroelectricity in hybrid halide perovskites

Author(s)
Kim, BumseopKim, JeongwooPark, Noejung
Issued Date
2020-11
DOI
10.1038/s41598-020-76742-7
URI
https://scholarworks.unist.ac.kr/handle/201301/49860
Fulltext
https://www.nature.com/articles/s41598-020-76742-7
Citation
SCIENTIFIC REPORTS, v.10, no.1, pp.19635
Abstract
Hybrid halide perovskite solar cells have recently attracted substantial attention, mainly because of their high power conversion efficiency. Among diverse variants, (CH3NH3)PbI3 and HC(NH2)(2)PbI3 are particularly promising candidates because their bandgap well matches the energy range of visible light. Here, we demonstrate that the large nonlinear photocurrent in beta-(CH3NH3)PbI3 and alpha -HC(NH2)(2)PbI3 is mostly determined by the intrinsic electronic band properties near the Fermi level, rooted in the inorganic backbone, whereas the ferroelectric polarization of the hybrid halide perovskite is largely dominated by the ionic contribution of the molecular cation. The spatial charge shift upon excitation is attributed to the charge transfer from iodine to lead atoms in the backbone, which is independent of the presence of the cationic molecules. Our findings can serve as a guiding principle for the design of future materials for halide-perovskite solar cells with further enhanced photovoltaic performance.
Publisher
NATURE RESEARCH
ISSN
2045-2322
Keyword
LEAD IODIDE PEROVSKITESSOLAR-CELLSHIGH-PERFORMANCECH3NH3PBI3POLARIZATIONEFFICIENTBEHAVIORDOMAINSCATIONS

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