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A Thienothiophene-Based Cation Treatment Allows Semitransparent Perovskite Solar Cells with Improved Efficiency and Stability
Authors:Ummugulsum Gunes  Esra Bag Celik  Cevahir C. Akgul  Mehmet Koc  Mohsen Ameri  Bahri E. Uzuner  Milad Ghasemi  Mehmet C. Sahiner  İlker Yildiz  Hava Z. Kaya  Selcuk Yerci  Gorkem Gunbas
Affiliation:1. METU GUNAM Center, Middle East Technical University, Ankara, 06800 Turkey

Department of Chemistry, Middle East Technical University, Ankara, 06800 Turkey;2. METU GUNAM Center, Middle East Technical University, Ankara, 06800 Turkey

Department of Polymer Science and Technology, Middle East Technical University, Ankara, 06800 Turkey;3. METU GUNAM Center, Middle East Technical University, Ankara, 06800 Turkey;4. METU GUNAM Center, Middle East Technical University, Ankara, 06800 Turkey

Department of Micro and Nanotechnology, Middle East Technical University, Ankara, 06800 Turkey;5. METU GUNAM Center, Middle East Technical University, Ankara, 06800 Turkey

Department of Electrical and Electronics Engineering, Middle East Technical University, Ankara, 06800 Turkey;6. The Central Laboratory, Middle East Technical University, Ankara, 06800 Turkey

Abstract:Perovskite surface treatment with additives has been reported to improve charge extraction, stability, and/or surface passivation. In this study, treatment of a 3D perovskite ((FAPbI3)1−x(MAPbBr3)x) layer with a thienothiophene-based organic cation (TTMAI), synthesized in this work, is investigated. Detailed analyses reveal that a 2D (n = 1) or quasi-2D layer does not form on the PbI2-rich surface 3D perovskite. TTMAI-treated 3D perovskite solar cells (PSCs) fabricated in this study show improved fill factors, providing an increase in their power conversion efficiencies (PCEs) from 17% to over 20%. It is demonstrated that the enhancement is due to better hole extraction by drift-diffusion simulations. Furthermore, thanks to the hydrophobic nature of the TTMAI, PSC maintains 82% of its initial PCE under 15% humidity for over 380 h (the reference retains 38%). Additionally, semitransparent cells are demonstrated reaching 17.9% PCE with treated 3D perovskite, which is one of the highest reported efficiencies for double cationic 3D perovskites. Moreover, the semitransparent 3D PSC (TTMAI-treated) maintains 87% of its initial efficiency for six weeks (>1000 h) when kept in the dark at room temperature. These results clearly show that this study fills a critical void in perovskite research where highly efficient and stable semitransparent perovskite solar cells are scarce.
Keywords:hole extraction  novel organic capping layers  semitransparent perovskite solar cells  stability  surface-treated perovskite solar cells
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