Stepwise polymerization enables tailored perovskite ink for scalable flexible perovskite solar cells

Abstract Commercializing flexible perovskite solar cells (f-PSCs) is hindered by poor interfacial contact and suboptimal crystallization, particularly in large-area perovskite solar modules (PSMs). Here, we propose an in situ stepwise polymerization strategy utilizing an epoxy-terminated monomer (BFDGE) and a curing agent (isophorone diamine, IPDA). A room-temperature pre-reaction enables precise tailoring of perovskite ink, ensuring reliable fabrication of perovskite films over large-area substrates. Subsequently, thermal annealing synchronizes the polymerization with perovskite crystallization, dynamically modulating the crystallization process. Consequently, rigid and flexible devices yield outstanding efficiencies of 27.16% (certified 26.87%) and 25.13%, respectively. The resultant cross-linked scaffold ensures superior durability, with devices retaining 93.3% of their initial efficiency following 1000 h of maximum power point (MPP) tracking and 96% after 630 h ultraviolet irradiation. Furthermore, minimodules (10.24 cm 2 ) achieve high efficiencies of 23.25% (rigid) and 20.59% (flexible), with 95.1% retention after 200 thermal cycles (−40 to 85 °C). Notably, a submodule achieves an impressive efficiency of 22.60% (655.2 cm 2 , certified 21.07%), establishing a new benchmark for large-area inverted PSMs.

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Publication Details

Journal
Nature Communications
Published
2026-09-15
DOI
https://doi.org/10.1038/s41467-026-77703-w
Primary Topic
Perovskite Materials and Applications
Type
article
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article

Stepwise polymerization enables tailored perovskite ink for scalable flexible perovskite solar cells

Zhaojin Wang, Ziyi Ge, Mengjin Yang, Weifu Zhang et al.
Nature Communications
Perovskite Materials and Applications
article

Stepwise polymerization enables tailored perovskite ink for scalable flexible perovskite solar cells

Zhaojin Wang, Ziyi Ge, Mengjin Yang, Weifu Zhang, Xiaowei Xu, Jiahan Xie, Jintao Zhu, Yang Bai, Chenfan Xing, Jiaming Huang, Hengyu Zhou, Wei Song
article en

Abstract

Abstract Commercializing flexible perovskite solar cells (f-PSCs) is hindered by poor interfacial contact and suboptimal crystallization, particularly in large-area perovskite solar modules (PSMs). Here, we propose an in situ stepwise polymerization strategy utilizing an epoxy-terminated monomer (BFDGE) and a curing agent (isophorone diamine, IPDA). A room-temperature pre-reaction enables precise tailoring of perovskite ink, ensuring reliable fabrication of perovskite films over large-area substrates. Subsequently, thermal annealing synchronizes the polymerization with perovskite crystallization, dynamically modulating the crystallization process. Consequently, rigid and flexible devices yield outstanding efficiencies of 27.16% (certified 26.87%) and 25.13%, respectively. The resultant cross-linked scaffold ensures superior durability, with devices retaining 93.3% of their initial efficiency following 1000 h of maximum power point (MPP) tracking and 96% after 630 h ultraviolet irradiation. Furthermore, minimodules (10.24 cm 2 ) achieve high efficiencies of 23.25% (rigid) and 20.59% (flexible), with 95.1% retention after 200 thermal cycles (−40 to 85 °C). Notably, a submodule achieves an impressive efficiency of 22.60% (655.2 cm 2 , certified 21.07%), establishing a new benchmark for large-area inverted PSMs.

Nature Communications
University of Nottingham Ningbo China (CN), Hong Kong Polytechnic University (HK), Shenzhen University (CN), Chinese Academy of Sciences (CN), China Academy of Printing Technology (CN), Shenzhen Technology University (CN), University of Chinese Academy of Sciences (CN), Ningbo Institute of Industrial Technology (CN)
Openalex Percentile: Top 20%
Perovskite Materials and Applications
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