Suppressing Intermediate‐Phase Heterogeneity Enables Efficient and Stable CsPbI 3 Solar Cells

ABSTRACT All‐inorganic CsPbI 3 perovskite solar cells are promising for durable photovoltaics owing to their superior resistance to thermal decomposition and halide segregation compared with hybrid counterparts. However, their photovoltaic performance remains hampered by poor crystalline quality arising from heterogeneous intermediate‐phase evolution and nonuniform crystallization kinetics. Herein, an intermediate‐phase homogenization strategy is developed to fabricate uniform CsPbI 3 films, wherein calcium ascorbate regulates the intermediate phases through synergistic interactions with perovskite components—including electrostatic interactions, hydrogen bonding, and coordination bonding. This modulation approach effectively suppresses the formation of Cs 4 PbI 6 intermediates and redirects the intermediate from a heterogeneous Cs 4 PbI 6 /DMAPbI 3 mixture toward a predominant Cs x DMA 1‐x PbI 3 (Asc) intermediate, yielding high‐quality CsPbI 3 films with improved structural and energetic homogeneity, as well as enhanced stability. The modified p‐i‐n CsPbI 3 solar cells achieve a champion power conversion efficiency of 22.08%, among the highest reported for inverted CsPbI 3 devices. Unencapsulated devices retain 97% of their initial efficiency after 1000 h of maximum power point tracking under 1 sun illumination at 40 ± 5°C in N 2 and 94% after aging at 85°C for 500 h in N 2 . This work demonstrates the effectiveness of suppressing crystallization‐kinetic heterogeneity for homogeneous perovskite films, offering a general strategy for rationally fabricating high‐performance thin‐film optoelectronic devices.

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Publication Details

Journal
Advanced Materials
Published
2026-09-04
DOI
https://doi.org/10.1002/adma.74895
Primary Topic
Perovskite Materials and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Suppressing Intermediate‐Phase Heterogeneity Enables Efficient and Stable CsPbI 3 Solar Cells

Tianhao Xia, Yuetong Wu, Xinmeng Zhuang, Wentao Zhou et al.
Advanced Materials
Perovskite Materials and Applications
article

Suppressing Intermediate‐Phase Heterogeneity Enables Efficient and Stable CsPbI 3 Solar Cells

Tianhao Xia, Yuetong Wu, Xinmeng Zhuang, Wentao Zhou, Huanping Zhou, Yanrun Chen, Rundong Fan, Zhongyang Zhang, Dejia Hu, Ruiyang Yin, Shuoyang Xu, Lianghui Liu, Zifeng Wu, Yanchen Chen, Kailin Li, Yan Li, Yue Li, Yue Ma
article en

Abstract

ABSTRACT All‐inorganic CsPbI 3 perovskite solar cells are promising for durable photovoltaics owing to their superior resistance to thermal decomposition and halide segregation compared with hybrid counterparts. However, their photovoltaic performance remains hampered by poor crystalline quality arising from heterogeneous intermediate‐phase evolution and nonuniform crystallization kinetics. Herein, an intermediate‐phase homogenization strategy is developed to fabricate uniform CsPbI 3 films, wherein calcium ascorbate regulates the intermediate phases through synergistic interactions with perovskite components—including electrostatic interactions, hydrogen bonding, and coordination bonding. This modulation approach effectively suppresses the formation of Cs 4 PbI 6 intermediates and redirects the intermediate from a heterogeneous Cs 4 PbI 6 /DMAPbI 3 mixture toward a predominant Cs x DMA 1‐x PbI 3 (Asc) intermediate, yielding high‐quality CsPbI 3 films with improved structural and energetic homogeneity, as well as enhanced stability. The modified p‐i‐n CsPbI 3 solar cells achieve a champion power conversion efficiency of 22.08%, among the highest reported for inverted CsPbI 3 devices. Unencapsulated devices retain 97% of their initial efficiency after 1000 h of maximum power point tracking under 1 sun illumination at 40 ± 5°C in N 2 and 94% after aging at 85°C for 500 h in N 2 . This work demonstrates the effectiveness of suppressing crystallization‐kinetic heterogeneity for homogeneous perovskite films, offering a general strategy for rationally fabricating high‐performance thin‐film optoelectronic devices.

Advanced Materials
Peking University (CN), Southwest Forestry University (CN), Ministry of Education and Child Care (CA), University of Science and Technology Beijing (CN)
Salt Science Research Foundation, Tencent, National Natural Science Foundation of China, China Postdoctoral Science Foundation, Natural Science Foundation of Beijing Municipality, Peking University, National Key Research and Development Program of China
Openalex Percentile: Top 20%
Perovskite Materials and Applications
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