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Enhanced Stability of All-Inorganic Tin–Lead Perovskite Solar Cells via Additive Engineering

作者:Asayil Alsulami, Ahmed Ali Said, İlhan Yavuz, Luis Lanzetta, Christopher E. Petoukhoff, Sofiia Kosar, Shynggys Zhumagali, Luis Huerta Hernandez, Xu Han, Yongcao Zhang, Anirudh Sharma, Stefaan De Wolf, Derya Baran · 发表于:ACS Energy Letters · 年份:2025 · DOI:10.1021/acsenergylett.5c02922 · 被引用次数:7 · 研究领域:Perovskite Materials and Applications、Organic Electronics and Photovoltaics、Thin-Film Transistor Technologies

All-inorganic tin–lead halide perovskites (CsPb x Sn 1– x I 3 ) are promising absorber materials for next-generation photovoltaics due to their near-ideal bandgaps (∼1.3–1.4 eV) and favorable optoelectronic characteristics. Their practical application, however, is limited by intrinsic instabilities, including Sn 2+ oxidation, halide migration, and phase transitions. Here, we introduce an additive engineering approach using dimethylammonium iodide (DMAI) to address these challenges. DMAI simultaneously passivates deep-level defects, inhibits Sn 2+ oxidation, reduces iodide migration, and improves moisture resistance, thereby enhancing environmental stability. CsPb x Sn 1– x I 3 films treated with DMAI maintain stable perovskite phases in air and exhibit improved optoelectronic properties. Devices fabricated with these films achieve power conversion efficiencies up to 14.2%, compared to 8.9% for untreated controls, and retain more than 94% of their initial performance after 3000 h of inert storage. This work highlights additive-driven stabilization as a pathway toward durable, high-efficiency all-inorganic perovskite solar cells.