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Influence of Hybrid Perovskite Fabrication Methods on Film Formation, Electronic Structure, and Solar Cell Performance
Published on: February 27, 2017
A dual-molecular interface engineering strategy for highly efficient and stable perovskite solar cells
Dingwei Wang1, Yikun Hua2, Jintao Ma1
1School of Materials Science and Engineering, Xi'an Polytechnic University, Xi'an 710048, China. wangjun@xpu.edu.cn.
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Defects and interfacial stress at the SnO2/perovskite buried interface severely hinder further improvements in the performance and scalable manufacturing of perovskite solar cells (PSCs). Herein, we propose a dual-molecular co-modification strategy composed of L-citrulline and L-malic acid (CM) to construct a multifunctional interfacial layer with a bridging effect. CM chemically reacts with undercoordinated Sn4+ in SnO2via its hydroxyl (-OH) groups, while its urea group (-NH-CO-NH2) simultaneously passivate undercoordinated Pb2+ and I- defects on the perovskite side. This strategy yields a multilayer configuration that improves the crystallinity of the perovskite film and alleviates its residual stress, thereby reducing non-radiative recombination at the buried interface and optimizing the interfacial energy barrier. As a result, rigid devices achieve an impressive champion power conversion efficiency (PCE) of 26.25%, and unencapsulated devices retain 88.31% of their initial efficiency after 1800 h of storage in air. This study provides an effective dual-molecular interface engineering approach for constructing highly efficient and stable perovskite photovoltaic devices.
