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Ultrastable and efficient slight-interlayer-displacement 2D Dion-Jacobson perovskite solar cells.

Weichuan ZhangZiyuan LiuLizhi ZhangHui WangChuanxiu JiangXianxin WuChuanyun LiShengli YueRongsheng YangHong ZhangJianqi ZhangXin-Feng LiuYuan ZhangHuiqiong Zhou
Published in: Nature communications (2024)
Stability has been a long-standing concern for solution-processed perovskite photovoltaics and their practical applications. However, stable perovskite materials for photovoltaic remain insufficient to date. Here we demonstrate a series of ultrastable Dion-Jacobson (DJ) perovskites (1,4-cyclohexanedimethanammonium)(methylammonium) n-1 Pb n I 3n+1 (n ≥ 1) for photovoltaic applications. The scalable technology by blade-coated solar cells for the designed DJ perovskites (nominal n = 5) achieves a maximum stabilized power conversion efficiency (PCE) of 19.11% under an environmental atmosphere. Un-encapsulated cells by blade-coated technology retain 92% of their initial efficiencies for over 4000 hours under ~90% relative humidity (RH) aging conditions. More importantly, these cells also exhibit remarkable thermal (85 °C) and operational stability, which shows negligible efficiency loss after exceeding 5000-hour heat treatment or after operation at maximum power point (MPP) exceeding 6000 hours at 45 °C under a 100 mW cm -2 continuous light illumination.
Keyphrases
  • solar cells
  • induced apoptosis
  • cell cycle arrest
  • perovskite solar cells
  • blood pressure
  • endoplasmic reticulum stress
  • cell death
  • heavy metals
  • risk assessment
  • human health
  • heat stress