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Coherent growth of high-Miller-index facets enhances perovskite solar cells

  • Shunde Li,
  • Yun Xiao,
  • Rui Su,
  • Weidong Xu,
  • Deying Luo,
  • Pengru Huang,
  • Linjie Dai,
  • Peng Chen,
  • Pietro Caprioglio,
  • Karim A. Elmestekawy,
  • Milos Dubajic,
  • Cullen Chosy,
  • Juntao Hu,
  • Irfan Habib,
  • Akash Dasgupta,
  • Dengyang Guo,
  • Yorrick Boeije,
  • Szymon J. Zelewski,
  • Zhangyuchang Lu,
  • Tianyu Huang,
  • Qiuyang Li,
  • Jingmin Wang,
  • Haoming Yan,
  • Hao-Hsin Chen,
  • Chunsheng Li,
  • Barnaby A. I. Lewis,
  • Dengke Wang,
  • Jiang Wu,
  • Lichen Zhao,
  • Bing Han,
  • Jianpu Wang,
  • Laura M. Herz,
  • James R. Durrant,
  • Kostya S. Novoselov,
  • Zheng-Hong Lu,
  • Qihuang Gong,
  • Samuel D. Stranks,
  • Henry J. Snaith,
  • Rui Zhu

摘要

Obtaining micron-thick perovskite films of high quality is key to realizing efficient and stable positive (p)-intrinsic (i)-negative (n) perovskite solar cells1,2, but it remains a challenge. Here we report an effective method for producing high-quality, micron-thick formamidinium-based perovskite films by forming coherent grain boundaries, in which high-Miller-index-oriented grains grow on the low-Miller-index-oriented grains in a stabilized atmosphere. The resulting micron-thick perovskite films, with enhanced grain boundaries and grains, showed stable material properties and outstanding optoelectronic performances. The small-area solar cells achieved efficiencies of 26.1%. The 1-cm2 devices and 5 cm × 5 cm mini-modules delivered efficiencies of 24.3% and 21.4%, respectively. The devices processed in a stabilized atmosphere presented a high reproducibility across all four seasons. The encapsulated devices exhibited superior long-term stability under both light and thermal stressors in ambient air.