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Hot photocarrier dynamics in organic solar cells

Nature Communications, ISSN: 2041-1723, Vol: 6, Issue: 1, Page: 7558
2015
  • 43
    Citations
  • 0
    Usage
  • 96
    Captures
  • 4
    Mentions
  • 36
    Social Media
Metric Options:   Counts1 Year3 Year

Metrics Details

  • Citations
    43
  • Captures
    96
  • Mentions
    4
    • News Mentions
      3
      • 3
    • Blog Mentions
      1
      • 1
  • Social Media
    36
    • Shares, Likes & Comments
      36
      • Facebook
        36

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Article Description

Photocurrent in an organic solar cell is generated by a charge transfer reaction between electron donors and acceptors. Charge transfer is expected to proceed from thermalized states, but this picture has been challenged by recent studies that have investigated the role of hot excitons. Here we show a direct link between excess excitation energy and photocarrier mobility. Charge transfer from excited donor molecules generates hot photocarriers with excess energy coming from the offset between the lowest unoccupied molecular orbital of the donor and that of the acceptor. Hot photocarriers manifest themselves through a short-lived spike in terahertz photoconductivity that decays on a picosecond timescale as carriers thermalize. Different dynamics are observed when exciting the acceptor at its absorption edge to a thermalized state. Charge transfer in this case generates thermalized carriers described by terahertz photoconductivity dynamics consisting of an instrument-limited rise to a long-lived signal.

Bibliographic Details

P. A. Lane; P. D. Cunningham; J. S. Melinger; O. Esenturk; E. J. Heilweil

Springer Science and Business Media LLC

Chemistry; Biochemistry, Genetics and Molecular Biology; Physics and Astronomy

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