Non-selective adsorption of organic cations enables conformal surface capping of perovskite grains for stabilized photovoltaic operation

  • Ziren Zhou
  • , Hui Jun Lian
  • , Jin Xie
  • , Wen Cheng Qiao
  • , Xue Feng Wu
  • , Yiheng Shi
  • , Xue Lu Wang
  • , Sheng Dai
  • , Haiyang Yuan
  • , Yu Hou*
  • , Shuang Yang*
  • , Hua Gui Yang
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

7 Scopus citations

Abstract

Chemical passivation of defective perovskite surface is a fundamental strategy to stabilize solar cell operation by impeding the defect-dominant surface ion migration. Here, we show that the configuration of organic cations plays a key role in determining their surface adsorption energetics at various perovskite facets, which will strongly impact the spatial uniformity of the low-dimensional perovskite passivation layer (LDPL). A weak-anisotropic adsorption behavior is demonstrated for tertiary ammonium that can enable a conformal LDPL on the perovskite grain surface. Benefiting from comprehensive surface passivation, the migration of ionic perovskite species was suppressed and the as-fabricated p-i-n solar cells yielded an optimized power conversion efficiency of 22.6% with an expected T80 lifetime of about 4,000 h under continuous 1-sun illumination. Our findings give insight into the design and preparation of heterostructured perovskite films toward efficient and stable solar cells.

Original languageEnglish
Article number100760
JournalCell Reports Physical Science
Volume3
Issue number2
DOIs
StatePublished - 16 Feb 2022

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