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Synergistic Surface Copassivation of PbS Colloidal Quantum Dot Films for Efficient Inverted Solar Cells

  • Noor Zaman*
  • , Jing Zhou
  • , Yiqun Li
  • , Tongjun Zheng
  • , Haiyang Li*
  • , Haider Ali Tauqeer
  • , Muhammad Salman Yousaf
  • , Biniyam Zemene Taye
  • , Abdul Basit
  • , Emmanuel Okoampah
  • , Zheng Liang
  • , Xiaoli Chen
  • , Nikita A. Emelianov
  • , Weixing Zhou
  • , Sergey M. Aldoshin
  • , Pavel A. Troshin*
  • , Changqing Lin
  • , Zedong Lin*
  • , Zhang MeiYing
  • , Xueqing Xu*
  • *Corresponding author for this work
  • University of Science and Technology of China
  • CAS - Guangzhou Institute of Energy Conversion
  • Bahar Dar University
  • Russian Academy of Sciences
  • Zhengzhou Research Institute of HIT
  • Harbin Institute of Technology
  • Shenzhen Bay Laboratory
  • TaiZhou University
  • South China University of Technology

Research output: Contribution to journalArticlepeer-review

Abstract

Inverted p-i-n structure lead sulfide colloidal quantum dots (PbS CQDs) solar cells are more process compatible and flexible in interface engineering, but their efficiency is still behind that of n-i-p conventional structures. Their performance is restricted by surface defects and interfacial recombination losses because of their high surface-to-volume ratio. To address these restrictions, here, we report a synergistic surface copassivation strategy that combines in situ mercaptopropionic acid (MPA) passivation during PbS CQD synthesis and postdeposition 2-phenylethylammonium iodide (PEAI) treatment to passivate residual surface and interfacial defects. Spectroscopic analysis, electrical characterization, and density functional theory (DFT) calculations collectively suggest that this copassivation strategy enhances surface coordination and interface passivation effects. Consequently, the optimized inverted PbS CQD solar cells have a champion power conversion efficiency (PCE) of 11.15% compared to control devices 10.41% with simultaneous enhancements in open-circuit voltage and fill factor. This work demonstrates that complementary surface copassivation provides an effective way to suppress defect-induced losses and advance the performance of inverted PbS CQD solar cells through a simplified processing route.

Original languageEnglish
Pages (from-to)37299-37309
Number of pages11
JournalACS Applied Materials and Interfaces
Volume18
Issue number26
DOIs
StatePublished - 8 Jul 2026

Keywords

  • PbS quantum dots
  • defect suppression
  • interfacial engineering
  • inverted solar cells
  • surface passivation

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