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Revealing Collaborative Effects of Binary Additives on Regulating Precursor Crystallization Toward Highly Efficient Perovskite Solar Cells

Shaoyu GengHenan Key Laboratory of Quantum Materials and Quantum Energy School of Future Technology Henan University Zhengzhou 450046 ChinaSong ZhangHenan Key Laboratory of Quantum Materials and Quantum Energy School of Future Technology Henan University Zhengzhou 450046 ChinaNan ShenHenan Key Laboratory of Quantum Materials and Quantum Energy School of Future Technology Henan University Zhengzhou 450046 ChinaGeping QuDepartment of Materials Science and Engineering City University of Hong Kong Kowloon Hong Kong 999077 ChinaHaojiang ShenHenan Key Laboratory of Quantum Materials and Quantum Energy School of Future Technology Henan University Zhengzhou 450046 ChinaJiayu HuHenan Key Laboratory of Quantum Materials and Quantum Energy School of Future Technology Henan University Zhengzhou 450046 ChinaJie YangHenan Key Laboratory of Quantum Materials and Quantum Energy School of Future Technology Henan University Zhengzhou 450046 ChinaYi JinHenan Key Laboratory of Quantum Materials and Quantum Energy School of Future Technology Henan University Zhengzhou 450046 ChinaLI YaHenan Key Laboratory of Quantum Materials and Quantum Energy School of Future Technology Henan University Zhengzhou 450046 ChinaRuirui CaoHenan Key Laboratory of Quantum Materials and Quantum Energy School of Future Technology Henan University Zhengzhou 450046 ChinaHuayang LiHenan Key Laboratory of Quantum Materials and Quantum Energy School of Future Technology Henan University Zhengzhou 450046 ChinaZhitao ShenHenan Key Laboratory of Quantum Materials and Quantum Energy School of Future Technology Henan University Zhengzhou 450046 ChinaZong‐Xiang XuDepartment of Chemistry Southern University of Science and Technology Shenzhen 518055 ChinaShi ChenHenan Key Laboratory of Quantum Materials and Quantum Energy School of Future Technology Henan University Zhengzhou 450046 ChinaAlex K.‐Y. JenDepartment of Chemistry City University of Hong Kong Kowloon Hong Kong 999077 China
2025en
ABI

Аннотация

Abstract Fabricating high‐quality perovskite layers is essential for achieving high‐performance solar cells. Considering the significant advancements made in additive engineering for optimizing perovskite crystallization using single additive, exploring the collaborative effect of dual additives on precursor for perovskite crystallization may be an effective way for further advancing device performance. Herein, a binary additives strategy is proposed, where phenylmethylammonium iodide (PMAI) and [2‐(9 H ‐carbazol‐9‐yl)ethyl]phosphonic acid (2PACz) are introduced into the precursor. Compared with the precursor with no additives or a single additive (PMAI or 2PACz), the use of dual additives more effectively cleaves edge‐shared Pb‐I octahedra to expedite the transformation from PbI 2 to PbI 3 − complexes as prenucleation clusters and produces much larger colloidal particles with accelerated nucleation. Concurrently, the crystallization in both spin‐coating and annealing processes is significantly retarded due to the stronger interaction between perovskite and binary additives. Benefiting from such rapid nucleation and slow crystallization, high‐quality perovskite layer with larger‐sized crystals and fewer defects is formed, resulting in mitigated microstrain, enhanced charge extraction, and suppressed nonradiative recombination. Consequently, the device derived from the use of dual additives could achieve an impressive efficiency of 26.05% (certified 25.49%) and retained 90% of its initial efficiency after 1200 h of maximum power point tracking.

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