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February 26, 2026Nature Energy17 citationsOpen Access

Photoswitchable isomers to improve grain boundary resilience and perovskite solar cells stability under light cycling

ZZZuhong ZhangRZRui ZhuGLGuixiang Li

Key Points

  • The aim is to enhance the stability and efficiency of perovskite solar cells under light cycling.
  • Integrated photoswitchable isomers at grain boundaries of PSCs.
  • Evaluated performance under ultraviolet exposure and thermal cycling.
  • Assessed lattice stability and defect mitigation through light-triggered mechanisms.
  • PSCs retained over 95% of initial performance after 2,000 hours of light cycling.
  • Achieved a power conversion efficiency of 27.2%, certified as 26.9%.
  • Demonstrated significant improvement in long-term operational durability.

Abstract

Abstract Realizing stable and scalable perovskite solar cells (PSCs) under real-world outdoor conditions remains a challenge for deployment. Here we report a strategy to improve the resilience of the grain boundary, achieving simultaneous improvement in the power conversion efficiency and long-term operational durability under realistic light cycling and ultraviolet exposure of PSCs. By integrating photoswitchable isomers at grain boundaries, we suppress lattice bond rupture and defect accumulation during repeated light cycling through light-triggered dynamic damage release. This approach stabilizes the triple-cation lead-based perovskite lattice against photoinduced distortions and degradation pathways. As a result, the PSCs retain over 95% of their initial performance after 2,000 h of ultraviolet-containing light cycling at 65 °C and 500 thermal cycles between –40 °C and 85 °C, and deliver a power conversion efficiency of 27.2% (certified as 26.9%). Our strategy improves the operational stability and commercial viability of triple-cation perovskite photovoltaics.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/699fe40c95ddcd3a253e8326https://doi.org/10.1038/s41560-026-01993-z
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