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A binary 2D perovskite passivation for efficient and stable perovskite/silicon tandem solar cells.

Fengtao PeiYihua ChenQianqian WangLiang LiYue MaHuifen LiuYe DuanTinglu SongHaipeng XieGuilin LiuNing YangYing ZhangWentao ZhouJiaqian KangXiuxiu NiuKailin LiFeng WangMengqi XiaoGuizhou YuanYuetong WuCheng ZhuXueyun WangHuanping ZhouYiliang WuQi Chen
Published in: Nature communications (2024)
To achieve high power conversion efficiency in perovskite/silicon tandem solar cells, it is necessary to develop a promising wide-bandgap perovskite absorber and processing techniques in relevance. To date, the performance of devices based on wide-bandgap perovskite is still limited mainly by carrier recombination at their electron extraction interface. Here, we demonstrate assembling a binary two-dimensional perovskite by both alternating-cation-interlayer phase and Ruddlesden-Popper phase to passivate perovskite/C 60 interface. The binary two-dimensional strategy takes effects not only at the interface but also in the bulk, which enables efficient charge transport in a wide-bandgap perovskite solar cell with a stabilized efficiency of 20.79% (1 cm 2 ). Based on this absorber, a monolithic perovskite/silicon tandem solar cell is fabricated with a steady-state efficiency of 30.65% assessed by a third party. Moreover, the tandem devices retain 96% of their initial efficiency after 527 h of operation under full spectral continuous illumination, and 98% after 1000 h of damp-heat testing (85 °C with 85% relative humidity).
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