钝化
材料科学
钙钛矿(结构)
卤化物
能量转换效率
制作
光电子学
化学工程
光伏系统
碘化物
锚固
无机化学
纳米技术
成核
配体(生物化学)
太阳能电池
兴奋剂
光化学
作者
Wenjing Zheng,Chaehoon Jeon,Yiming Dai,C Wang,Weicun Chu,Jie Sheng,Luyao Li,Qiankai Ba,Sang Il Seok,Riming Nie
摘要
Abstract The complex moisture–oxygen environment in air places stringent demands on surface passivation for air‐processed perovskite solar cells. However, most conventional ammonium ligand‐based passivation, which binds to the perovskite surface through a terminal site, often induces ligand intercalation, elevates interfacial resistance, and compromises environmental stability, thereby limiting efficient device fabrication under ambient conditions. In this study, we report a robust, ligand‐based, intermediate‐site anchoring strategy for nonlayered interfacial passivation using a series of choline derivatives. The thioacyl sulfur coordinates strongly with under‐coordinated Pb 2+ sites, while iodide counter‐anions assist in halide vacancy healing, collectively forming a thermally robust and electronically homogeneous top interface. The surface passivation homogenizes surface potential, optimizes band alignment, relaxes residual strain, and suppresses trap‐assisted recombination and halide migration. Consequently, the resulting perovskite solar cells achieve a power conversion efficiency (PCE) of 26.54%, the highest value for air‐processed n–i–p PSCs reported so far. These devices also retained over 90% PCE after 2000 h at 65°C and 90% under continuous maximum power point tracking for 1000 h (AM 1.5G, 40°C ± 1°C), with projected T 80 lifetimes of ∼9800 h under illumination and ∼11 000 h under thermal aging, among the most stable air‐processed perovskite solar cells reported to date.
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