Mechanistic insight into α-to-δ phase transition and stabilizing α-phase FAPbI3 via regulating δ-phase orientation

The structural instability of formamidinium-based perovskite primarily originates from spontaneous α-to-δ phase transition. Although various suppression strategies have been proposed, developing a definitive solution remains challenging due to incomplete understanding of the physical mechanisms governing this phase transition. This work reveals that the coherent interface with tensile strain between perovskite α-phase (011) and δ-phase (110) planes acts as an active site for α-to-δ phase transition. Building on this insight, two-dimensional perovskitoid materials are introduced into the perovskite matrix, which strongly interact with the δ-phase (110) plane to form the 2D/δ interface. The large interfacial strain disrupts δ-phase orientation, suppresses the formation of α/δ transition interfaces, and thus enhances α-phase stability. This strategy enables FA-based perovskite solar cells to achieve an efficiency of 25.61%, with unencapsulated devices maintaining 90% initial efficiency after 1,000 h at 70% relative humidity. This work provides a mechanistic understanding and a universally applicable strategy to stabilize FA-based perovskites. Xing et al. report that the coherent interface with tensile strain between perovskite α-phase (011) and δ-phase (110) acts as an active site for α-to-δ phase transition. 2D perovskitoid materials are introduced to form the 2D/δ interfaces and enhance α-phase stability for efficient and stable solar cells.

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Publication Details

Journal
Nature Communications
Published
2026-06-06
DOI
https://doi.org/10.1038/s41467-026-73739-0
Primary Topic
Perovskite Materials and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Mechanistic insight into α-to-δ phase transition and stabilizing α-phase FAPbI3 via regulating δ-phase orientation

Chuwu Xing, D Q Wang, Y W Li, Yibin Zhang et al.
Nature Communications
Perovskite Materials and Applications
article

Mechanistic insight into α-to-δ phase transition and stabilizing α-phase FAPbI3 via regulating δ-phase orientation

Chuwu Xing, D Q Wang, Y W Li, Yibin Zhang, Qinhui Bao, Zhiqiang Lu, Zhike Liu, Miao He, Tianjin Zhang
article en

Abstract

The structural instability of formamidinium-based perovskite primarily originates from spontaneous α-to-δ phase transition. Although various suppression strategies have been proposed, developing a definitive solution remains challenging due to incomplete understanding of the physical mechanisms governing this phase transition. This work reveals that the coherent interface with tensile strain between perovskite α-phase (011) and δ-phase (110) planes acts as an active site for α-to-δ phase transition. Building on this insight, two-dimensional perovskitoid materials are introduced into the perovskite matrix, which strongly interact with the δ-phase (110) plane to form the 2D/δ interface. The large interfacial strain disrupts δ-phase orientation, suppresses the formation of α/δ transition interfaces, and thus enhances α-phase stability. This strategy enables FA-based perovskite solar cells to achieve an efficiency of 25.61%, with unencapsulated devices maintaining 90% initial efficiency after 1,000 h at 70% relative humidity. This work provides a mechanistic understanding and a universally applicable strategy to stabilize FA-based perovskites. Xing et al. report that the coherent interface with tensile strain between perovskite α-phase (011) and δ-phase (110) acts as an active site for α-to-δ phase transition. 2D perovskitoid materials are introduced to form the 2D/δ interfaces and enhance α-phase stability for efficient and stable solar cells.

Nature Communications
Ministry of Education (MV), Hubei University (CN), Shaanxi Normal University (CN)
National Natural Science Foundation of China
Affordable and clean energy
Openalex Percentile: Top 9%
Perovskite Materials and Applications
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