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Dredging the Charge-Carrier Transfer Pathway for Efficient Low-Dimensional Ruddlesden-Popper Perovskite Solar Cells

  • Pengwei Li
  • , Linfang Yan
  • , Qingli Cao
  • , Chao Liang
  • , He Zhu
  • , Sihui Peng
  • , Yongpeng Yang
  • , Yuncai Liang
  • , Rudai Zhao
  • , Shuangquan Zang
  • , Yiqiang Zhang
  • , Yanlin Song
  • Zhengzhou University
  • CAS - Institute of Chemistry

Research output: Contribution to journalArticlepeer-review

42 Scopus citations

Abstract

Low-dimensional Ruddlesden-Popper (LDRP) perovskites still suffer from inferior carrier transport properties. Here, we demonstrate that efficient exciton dissociation and charge transfer can be achieved in LDRP perovskite by introducing γ-aminobutyric acid (GABA) as a spacer. The hydrogen bonding links adjacent spacing sheets in (GABA)2MA3Pb4I13 (MA=CH3NH3+), leading to the charges localized in the van der Waals gap, thereby constructing “charged-bridge” for charge transfer through the spacing region. Additionally, the polarized GABA weakens dielectric confinement, decreasing the (GABA)2MA3Pb4I13 exciton binding energy as low as ≈73 meV. Benefiting from these merits, the resultant GABA-based solar cell yields a champion power conversion efficiency (PCE) of 18.73 % with enhanced carrier transport properties. Furthermore, the unencapsulated device maintains 92.8 % of its initial PCE under continuous illumination after 1000 h and only lost 3 % of its initial PCE under 65 °C for 500 h.

Original languageEnglish
Article numbere202217910
JournalAngewandte Chemie - International Edition
Volume62
Issue number13
DOIs
StatePublished - 20 Mar 2023

Keywords

  • Exciton Binding Energy
  • Perovskite
  • Ruddlesden-Popper
  • Single Crystals
  • Solar Cells

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