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Multi-functional Phase-Changeable Salt for Inverted Perovskite Solar Cells

  • Peidong Chen
  • , Zeping Ou
  • , Mingyang Gao
  • , Can Wang
  • , Mingyu Song
  • , Lei Liu
  • , Yi Pan
  • , Qin Gao
  • , Zhiping Liu
  • , Wei Wan
  • , Junjie Zhang
  • , Jiahui Shen
  • , Qiangwei Wang
  • , Zeyun Xiao
  • , Nabonswende Aida Nadege Ouedraogo
  • , Yu Chen
  • , Tingming Jiang
  • , Rui Wang
  • , Haoxuan Guo*
  • , Kuan Sun*
  • *Corresponding author for this work
  • Chongqing University
  • CAS - Chongqing Institute of Green and Intelligent Technology
  • Westlake University
  • CAS - Institute of High Energy Physics
  • China University of Geosciences, Beijing
  • Kansai University

Research output: Contribution to journalArticlepeer-review

Abstract

Non-radiative recombination and uncontrolled crystallization at the buried perovskite interface remain key barriers to achieving highly efficient and stable perovskite solar cells (PSCs). Herein, we introduce a multi-functional phase-changeable salt, 2-(diphenylphosphino)ethanaminium tetrafluoroborate (DPPEABF4), as a functional interfacial modulator. DPPEA+ interacts with perovskite precursors (FAI and PbI2) through coordination and hydrogen bonding, suppressing excessive nucleation and reducing nucleation density. During annealing, DPPEABF4 undergoes a reversible solid-to-liquid phase transition that buffers heat transfer, ensuring more uniform heating and slower, more controlled crystallization across the substrate. These effects collectively yield perovskite films with enlarged grains, reduced defect densities, and improved crystallinity. Concurrently, π–π stacking between DPPEA+ and Me-4PACz establishes an interfacial dipole that increases the work function and tunes the energy-level alignment at the buried interface, facilitating efficient hole transport. As a result, the optimized devices achieve a champion power conversion efficiency of 26.52% (certified 26.46%) and retain over 90% of their initial efficiency after more than 2000 h of storage under 30–40% relative humidity. This work provides a new paradigm for designing dynamic interfacial materials for high-performance optoelectronic devices.

Original languageEnglish
Article numbere20030
JournalAdvanced Materials
Volume38
Issue number17
DOIs
Publication statusPublished - 20 Mar 2026
Externally publishedYes

Keywords

  • defect passivation
  • dipole engineering
  • functional interfaces
  • perovskite solar cells
  • phase-changeable salt

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