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Improved Efficiency and Stability in Inverted-Structure Solar Cells with Lead-Free All-Inorganic Halide Perovskite
Hanbo Jung1, Zihao Liu1, Masato Sotome1,2
1Department of Materials Engineering, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656, Japan.
None:
We report the fabrication of an inverted structure solar cell with all-inorganic lead-free perovskite CsSn1-xZnxBr3 alloy thin films grown by physical vapor codeposition of CsBr, SnBr2, and ZnBr2. It was found that the deposited CsSn1-xZnxBr3 perovskite alloy thin films exhibited improved morphological characteristics (larger grain sizes, lower pinhole density, and improved flatness) compared to the CsSnBr3 thin film. The incorporation of 4% Zn (CsSn0.96Zn0.04Br3, abbreviated as 4Zn) resulted in a bandgap narrowing of ∼20 meV compared to CsSnBr3 with the upshift of the valence band maximum and conduction band minimum of ∼0.3 eV. The inverted-structure perovskite solar cells (PSCs) (ITO/PEDOT:PSS/4Zn/C60/BCP/Ag) exhibit improved energy level alignment with the transport layers of C60 and PEDOT:PSS. The 4Zn solar cell showed an open-circuit voltage (VOC: 0.35 V), short-circuit current density (JSC: 13.99 mA/cm2), and fill factor (FF: 54%), yielding a power conversion efficiency (PCE) of 2.59%. The Zn-alloyed PSCs were more efficient and stable than the pure CsSnBr3 PSCs under ambient air conditions. The 4% Zn device preserved 96% of VOC, 86% of JSC, 91% of FF, and 83% of the initial PCE after preservation for 6 days under 60% humidity at 25 °C. This result offers a potential strategy for the fabrication of air-stable all-inorganic lead-free PSCs.
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