材料科学
甲脒
钙钛矿(结构)
升华(心理学)
同质性(统计学)
沉积(地质)
能量转换效率
工艺工程
串联
碘化物
纳米技术
光电子学
太阳能电池
下降(电信)
工程物理
钙钛矿太阳能电池
单相
光伏
薄膜
计算机科学
作者
Thomas Feeney,Aleksandra Miaskiewicz,Julian Petry,Felix Laufer,Roja Singh,Stefanie Severin,Viktor Škorjanc,Alexander Diercks,Suresh Maniyarasu,Lars Korte,Steve Albrecht,Ulrich W. Paetzold,Marcel Roß,Paul Faßl
标识
DOI:10.1002/adfm.202517873
摘要
Abstract Vapor phase deposition methods are readily able to achieve uniform coverage of large‐area substrates and are widely considered promising for industrial‐scale perovskite solar cell fabrication. However, as perovskite‐silicon tandem solar cells approach commercialization, practical considerations of manufacturing throughput come into play. Here, it is shown that the inherent sublimation characteristics of the organic precursor formamidinium iodide (FAI) make increasing the deposition rate of FA‐based co‐evaporated perovskites negatively impact replicability and lead to a substantial decrease in power conversion efficiency (PCE). These losses are linked to reduced film homogeneity and the emergence of carbon‐rich regions within the perovskite layer. To mitigate these rate‐induced effects, two approaches are explored: source layout optimization and material preconditioning. Utilizing dual FAI sources rather than a single FAI source reduces the relative PCE drop from ≈23% rel to ≈9% rel at a deposition rate of ≈18 nm min −1 (14.8% PCE @ maximum power point (MPP)) compared to the baseline rate of 5 nm min −1 (16.2% PCE @MPP). Alternatively, preconditioning a single FAI source reduces the performance losses from ≈31% rel to ≈26% rel at a deposition rate of ≈21 nm min −1 . These findings underscore the importance of tailored source strategies to enable high‐rate FA‐based co‐evaporated perovskites without compromising device performance.
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