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Controlling Crystal Growth via an Autonomously Longitudinal Scaffold for Planar Perovskite Solar Cells

机译:通过自动纵向支架控制晶体增长,用于平面钙钛矿太阳能电池

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摘要

Abstract Sequential deposition is certified as an effective technology to obtain high‐performance perovskite solar cells (PVSCs), which can be derivatized into large‐scale industrial production. However, dense lead iodide (PbI2) causes incomplete reaction and unsatisfactory solution utilization of perovskite in planar PVSCs without mesoporous titanium dioxide as a support. Here, a novel autonomously longitudinal scaffold constructed by the interspersion of in situ self‐polymerized methyl methacrylate (sMMA) in PbI2 is introduced to fabricate efficient PVSCs with excellent flexural endurance and environmental adaptability. By this strategy perovskite solution can be confined within an organic scaffold with vertical crystal growth promoted, effectively inhibiting exciton accumulation and recombination at grain boundaries. Additionally, sMMA cross‐linked perovskite network can release mechanical stress and occupy the main channels for ion migration and water/oxygen permeation to significantly improve operational stability, which opens up a new strategy for the commercial development of large‐area PVSCs in flexible electronics.
机译:摘要顺序沉积被认证为获得高性能钙钛矿太阳能电池(PVSC)的有效技术,可以衍生成大规模的工业生产。然而,致密的铅碘化物(PBI2)导致平面PVSC在平面PVSC中的不完全反应和不令人满意的溶液利用,而没有中孔二氧化钛作为载体。这里,通过PBI2中原位自聚合甲基丙烯酸甲酯(SMMA)的间隙构成的一种新型的自主纵向支架,以制造具有优异的抗弯曲耐久性和环境适应性的有效PVSC。通过该策略,钙钛矿溶液可以限制在具有垂直晶体生长的有机支架内,促进,有效地抑制晶界的激子积累和重组。此外,SMMA交联钙钛矿网络可以释放机械应力并占据离子迁移和水/氧气渗透的主通道,以显着提高运营稳定性,这为柔性电子产品开辟了大面积PVSC的商业发展的新策略。

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