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Inorganic Rubidium Cation as an Enhancer for Photovoltaic Performance and Moisture Stability of HC(NH2)2PbI3 Perovskite Solar Cells : Inorganic Rubidium Cation as an Enhancer for Photovoltaic Performance and Moisture Stability of HC(NH2)(2)PbI3 Perovskite Solar Cells

Cited 206 time in Web of Science Cited 212 time in Scopus
Authors

Park, Yun Hee; Jeong, Inyoung; Bae, Seunghwan; Son, Hae Jung; Lee, Phillip; Lee, Jinwoo; Lee, Chul-Ho; Ko, Min Jae

Issue Date
2017-04
Publisher
John Wiley & Sons Ltd.
Citation
Advanced Functional Materials, Vol.27 No.16, p. 1605988
Abstract
Perovskite solar cells (PSCs) based on organic monovalent cation (methylammonium or formamidinium) have shown excellent optoelectronic properties with high efficiencies above 22%, threatening the status of silicon solar cells. However, critical issues of long-term stability have to be solved for commercialization. The severe weakness of the state-of-the-art PSCs against moisture originates mainly from the hygroscopic organic cations. Here, rubidium (Rb) is suggested as a promising candidate for an inorganic-organic mixed cation system to enhance moisture-tolerance and photovoltaic performances of formamidinium lead iodide (FAPbI(3)). Partial incorporation of Rb in FAPbI(3) tunes the tolerance factor and stabilizes the photoactive perovskite structure. Phase conversion from hexagonal yellow FAPbI(3) to trigonal black FAPbI(3) becomes favored when Rb is introduced. The authors find that the absorbance and fluorescence lifetime of 5% Rb-incorporated FAPbI(3) (Rb(0.05)FA(0.95)PbI(3)) are enhanced than bare FAPbI(3). Rb(0.05)FA(0.95)PbI(3)-based PSCs exhibit a best power conversion efficiency of 17.16%, which is much higher than that of the FAPbI(3) device (13.56%). Moreover, it is demonstrated that the Rb(0.05)FA(0.95)PbI(3) film shows superior stability against high humidity (85%) and the full device made with the mixed perovskite exhibits remarkable long-term stability under ambient condition without encapsulation, retaining the high performance for 1000 h.
ISSN
1616-301X
URI
https://hdl.handle.net/10371/202283
DOI
https://doi.org/10.1002/adfm.201605988
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  • College of Engineering
  • Department of Electrical and Computer Engineering
Research Area 2차원 반도체 소자 및 재료, High-Performance 2D Electronics, Low-Power 2D Electronics, 뉴로모픽 소자 및 응용기술, 저전력 소자 및 소자물리

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