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Portrait of Arkady Yartsev. Photo: Kennet Ruona

Arkady Yartsev

Researcher

Portrait of Arkady Yartsev. Photo: Kennet Ruona

9.0% power conversion efficiency from ternary all-polymer solar cells

Author

  • Zhaojun Li
  • Xiaofeng Xu
  • Wei Zhang
  • Xiangyi Meng
  • Zewdneh Genene
  • Wei Ma
  • Wendimagegn Mammo
  • Arkady Yartsev
  • Mats R. Andersson
  • René A J Janssen
  • Ergang Wang

Summary, in English

Integration of a third component into a single-junction polymer solar cell (PSC) is regarded as an attractive strategy to enhance the performance of PSCs. Although binary all-polymer solar cells (all-PSCs) have recently emerged with compelling power conversion efficiencies (PCEs), the PCEs of ternary all-PSCs still lag behind those of the state-of-the-art binary all-PSCs, and the advantages of ternary systems are not fully exploited. In this work, we realize high-performance ternary all-PSCs with record-breaking PCEs of 9% and high fill factors (FF) of over 0.7 for both conventional and inverted devices. The improved photovoltaic performance benefits from the synergistic effects of extended absorption, more efficient charge generation, optimal polymer orientations and suppressed recombination losses compared to the binary all-PSCs, as evidenced by a set of experimental techniques. The results provide new insights for developing high-performance ternary all-PSCs by choosing appropriate donor and acceptor polymers to overcome limitations in absorption, by affording good miscibility, and by benefiting from charge and energy transfer mechanisms for efficient charge generation.

Department/s

  • Chemical Physics

Publishing year

2017-10-01

Language

English

Pages

2212-2221

Publication/Series

Energy and Environmental Science

Volume

10

Issue

10

Document type

Journal article

Publisher

Royal Society of Chemistry

Topic

  • Polymer Technologies
  • Energy Systems
  • Condensed Matter Physics

Status

Published

ISBN/ISSN/Other

  • ISSN: 1754-5692