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August 24, 2025Advanced Functional Materials9 citations

Polymer‐Coordinated PbI2 in Sequentially Deposited Formamidinium‐Based Perovskite Absorbers for Efficient and Stable Solar Cells

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KWKexiang WangWSWeiwei SunWLWeifeng Liu

Key Points

  • Power conversion efficiency increased to 25.79% with improved perovskite films and reduced defect density.
  • Use of a multifunctional polymer regulated crystallization and passivated defects effectively in the films.
  • Two-step method faces issues with low crystallinity due to incomplete reactions with PbI2 and ammonium salts.
  • Significant gains in storage, thermal, and operational stability supports future use of FA-based solar cells.

Abstract

Abstract Formamidinium (FA)‐based perovskite absorbers processed by a two‐step method are gaining popularity because of their suitable bandgap and excellent photovoltaic performance. However, the biggest obstacle faced by two‐step method is the incomplete reaction between ammonium salts and PbI 2 , which results in low crystallinity perovskite films with high defect density and overdosed PbI 2 residues, deteriorating the efficiency and stability of perovskite solar cells (PSCs). Herein, a multifunctional polymer poly(vinyl acetate) (PVAc) is introduced into PbI 2 precursor, and it is demonstrated that abundant carbonyl groups in PVAc inhibit the crystallization of PbI 2 and release its stress, thereby delaying its reaction rate with ammonium salts and regulating the crystallization process of perovskite films. Meanwhile, during the crystal growth process, the nonvolatile PVAc is expelled to the surface and grain boundaries of perovskite films, which effectively passivate the uncoordinated Pb 2+ defects and further absorb stress from the perovskite lattice through the deformation of polymer chain. As a result, high‐quality FA‐based perovskite films with high crystallinity, preferred crystal orientation, decreased PbI 2 residues, low defect density, and released tensile stress are obtained, which greatly boost the power conversion efficiency of PSCs to 25.79%, accompanied by significantly enhanced storage, thermal, and operational stability.

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Cite This Study

Wang et al. (2025) studied this question.

synapsesocial.com/papers/68af5d63ad7bf08b1eae072ahttps://doi.org/10.1002/adfm.202516192
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