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C60-Based Ionic Salt Electron Shuttle for High-Performance Inverted Perovskite Solar Modules

  • Shuai You
  • , Hongwei Zhu
  • , Zhongjin Shen
  • , Xiaoming Wang
  • , Bingyao Shao
  • , Qingxiao Wang
  • , Jianxun Liu
  • , Youyou Yuan
  • , Benjia Dou
  • , Erin Sanehira
  • , Todd Russell
  • , Adam Lorenz
  • , Yifan Dong
  • , Lei Chen
  • , Marco Casareto
  • , Nicholas Rolston
  • , Matthew Beard
  • , Joseph Berry
  • , Marina Freitag
  • , Yanfa Yan
  • Osman Bakr, Kai Zhu
  • National Renewable Energy Laboratory
  • King Abdullah University of Science & Technology
  • Newcastle University
  • University of Toledo
  • CubicPV
  • Arizona State University
  • University of Colorado Boulder

Research output: Contribution to journalArticlepeer-review

94 Scopus Citations

Abstract

Although C60 is usually the electron transport layer (ETL) in inverted perovskite solar cells, its molecular nature of C60 leads to weak interfaces that lead to non-ideal interfacial electronic and mechanical degradation. Here, we synthesized an ionic salt from C60, 4-(1',5'-dihydro-1'-methyl-2'H-[5,6] fullereno-C60-Ih-[1,9-c]pyrrol-2'-yl) phenylmethanaminium chloride (CPMAC), and used it as the electron shuttle in inverted PSCs. The CH2-NH3+ head group in the CPMA cation improved the ETL interface and the ionic nature enhanced the packing, leading to ~3-fold increase in the interfacial toughness compared to C60. Using CPMAC, we obtained ~26% power conversion efficiencies (PCEs) with ~2% degradation after 2,100 hours of 1-sun operation at 65degrees C. For minimodules (four subcells, 6 centimeters square), we achieved the PCE of ~23% with <9% degradation after 2,200 hours of operation at 55degrees C.
Original languageAmerican English
Pages (from-to)964-968
Number of pages5
JournalScience
Volume388
Issue number6750
DOIs
StatePublished - 2025

NLR Publication Number

  • NREL/JA-5900-92983

Keywords

  • C60
  • mechanical adhesion
  • perovskite
  • solar cells
  • stability

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