Constructing an Interfacial Gradient Heterostructure Enables Efficient CsPbI3 Perovskite Solar Cells and Printed Minimodules
Shan Tan, Chengyu Tan, Yuqi Cui, Bingcheng Yu, Yiming Li, Huijue Wu, Jiangjian Shi, Yanhong Luo 等 10 位
Chinese Academy of Sciences Academy of Opto-Electronics Institute of Physics University of Chinese Academy of Sciences
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摘要与影响
Severe nonradiative recombination originating from interfacial defects together with the pervasive energy level mismatch at the interface remarkably limits the performance of CsPbI3 perovskite solar cells (PSCs). These issues need to be addressed urgently for high‐performance cells and their applications. Herein, an interfacial gradient heterostructure based on low‐temperature post‐treatment of quaternary bromide salts for efficient CsPbI3 PSCs with an impressive efficiency of 21.31% and an extraordinary fill factor of 0.854 is demonstrated. Further investigation reveals that Br− ions diffuse into the perovskite films to heal undercoordinated Pb2+ and inhibit Pb cluster formation, thus suppressing nonradiative recombination in CsPbI3. Meanwhile, a more compatible interfacial energy level alignment resulting from Br− gradient distribution and organic cations surface termination is also achieved, hence promoting charge separation and collection. Consequently, the printed small‐size cell with an efficiency of 20.28% and 12 cm2 printed CsPbI3 minimodules with a record efficiency of 16.60% are also demonstrated. Moreover, the unencapsulated CsPbI3 films and devices exhibit superior stability.
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