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March 12, 2026Nature Communications4 citationsOpen Access

Perovskite solar cells with enhanced thermal fatigue resistance under extreme temperature cycling

CYCem YilmazABAli BuyrukYSYating Shi

Key Points

  • The central aim is to understand and enhance the durability of perovskite solar cells under extreme temperature cycling.
  • Conducted accelerated thermal cycling tests between -80 °C and +80 °C.
  • Analyzed degradation at substrate-perovskite interface and within grain boundaries.
  • Implemented a co-additive strategy involving lipoic acid and derivatives to improve adhesion.
  • Used in situ polymerization during annealing to enhance grain-boundary strength.
  • Achieved stabilized solar cell efficiencies of 26% after enhancements.
  • Devices retained 84% of initial efficiency after 16 extreme temperature cycles.
  • Most degradation occurred during initial thermal cycling, indicating duration is critical.

Abstract

Metal halide perovskite solar cells combine high power density with low-cost manufacturing, but durability under repeated extreme temperature cycling remains insufficiently understood. We investigate thermal fatigue under cycling between -80 °C and +80 °C as an accelerated stress protocol. Mismatched thermal expansion between the perovskite absorber and glass substrate induces biaxial tensile strain, leading to degradation at the substrate-perovskite interface and within grain boundaries. To mitigate these failure modes, we introduce a co-additive molecular strategy based on lipoic acid, dihydrolipoic acid, and a sulfonium-based derivative to enhance interfacial adhesion, while in situ polymerization during annealing reinforces grain-boundary cohesion. This dual reinforcement improves robustness and performance, achieving stabilized efficiencies of 26% under standard solar illumination. Devices retain 84% of initial efficiency after 16 extreme temperature cycles. Our experiments reveal that thermal exposure duration is more critical than cycle number, with most degradation occurring during initial cycles.

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Cite This Study

Yilmaz et al. (2026) studied this question.

synapsesocial.com/papers/69b2583896eeacc4fcec7b18https://doi.org/10.1038/s41467-026-70293-7
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