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Plasma surface engineering for efficient and stable perovskite solar cells and modules

  • Rundong Fan
  • , Yue Ma
  • , Shuoyang Xu
  • , Liang Cheng
  • , Zhongyang Zhang
  • , Yan Li
  • , Huijun Liu
  • , Zhaoboxun Bao
  • , Guilin Liu
  • , Yuetong Wu
  • , Xinmeng Zhuang
  • , Kailin Li
  • , Yanrun Chen
  • , Jackson Tze Fung Ng
  • , Bo Shiun Huang
  • , Wentao Zhou
  • , Yu Zhang
  • , Ying Han
  • , Ruiyang Yin
  • , Shaocheng Liu
  • Tianhao Xia, Mengqi Xiao, Xiaowei Zhan, Xiaoxu Zhao, Qi Chen, Huanping Zhou*
*Corresponding author for this work
  • Peking University
  • Jiangnan University
  • Beijing Institute of Technology
  • Southwest United Graduate School

Research output: Contribution to journalArticlepeer-review

Abstract

The instability of perovskite solar cells (PSCs) stems largely from the formation and evolution of interfacial defects associated with the soft, multicomponent perovskite lattice. We report a scalable, plasma-based passivation strategy that forms conformal, uniform, and strong-bonded heterostructure through in situ chemical reactions on large-area perovskite films. This approach also mitigates defect accumulation within the laser-scribed interconnection regions, where localized damage often dominates module-level performance losses. We achieved a power conversion efficiency (PCE) of 27.2% in small-area devices (active area 8.313 square millimeters) and 24.0% (certified efficiency of 23.5%) in 100-square-centimeter (cm2) modules (aperture area 65.05 cm2). The small-area device retained 98.1% of its initial PCE after 2000 hours of maximum power point tracking at 85°C under 1-sun illumination, and the 100-cm2 module retained 99.3% of its initial PCE after 1600 hours at 65°C under 1-sun illumination.

Original languageEnglish
Pages (from-to)490-497
Number of pages8
JournalScience
Volume393
Issue number6810
DOIs
Publication statusPublished - 30 Jul 2026
Externally publishedYes

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