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The role of charge recombination to triplet excitons in organic solar cells

Gillett, Alexander J. (author)
Univ Cambridge, England
Privitera, Alberto (author)
Univ Oxford, England
Dilmurat, Rishat (author)
Univ Mons, Belgium
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Karki, Akchheta (author)
Univ Calif Santa Barbara, CA 93106 USA
Qian, Deping (author)
Linköpings universitet,Elektroniska och fotoniska material,Tekniska fakulteten
Pershin, Anton (author)
Univ Mons, Belgium; Wigner Res Ctr Phys, Hungary
Londi, Giacomo (author)
Univ Mons, Belgium
Myers, William K. (author)
Univ Oxford, England
Lee, Jaewon (author)
Univ Calif Santa Barbara, CA 93106 USA; Chungnam Natl Univ, South Korea
Yuan, Jun (author)
Linköpings universitet,Elektroniska och fotoniska material,Tekniska fakulteten,Cent South Univ, Peoples R China
Ko, Seo-Jin (author)
Univ Calif Santa Barbara, CA 93106 USA; Korea Res Inst Chem Technol, South Korea
Riede, Moritz K. (author)
Univ Oxford, England
Gao, Feng (author)
Linköpings universitet,Elektroniska och fotoniska material,Tekniska fakulteten
Bazan, Guillermo C. (author)
Univ Calif Santa Barbara, CA 93106 USA
Rao, Akshay (author)
Univ Cambridge, England
Nguyen, Thuc-Quyen (author)
Univ Calif Santa Barbara, CA 93106 USA
Beljonne, David (author)
Univ Mons, Belgium
Friend, Richard H. (author)
Univ Cambridge, England
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 (creator_code:org_t)
2021-09-29
2021
English.
In: Nature. - : NATURE PORTFOLIO. - 0028-0836 .- 1476-4687. ; 597:7878, s. 666-
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • The use of non-fullerene acceptors (NFAs) in organic solar cells has led to power conversion efficiencies as high as 18%(1). However, organic solar cells are still less efficient than inorganic solar cells, which typically have power conversion efficiencies of more than 20%(2). A key reason for this difference is that organic solar cells have low open-circuit voltages relative to their optical bandgaps(3), owing to non-radiative recombination(4). For organic solar cells to compete with inorganic solar cells in terms of efficiency, non-radiative loss pathways must be identified and suppressed. Here we show that in most organic solar cells that use NFAs, the majority of charge recombination under open-circuit conditions proceeds via the formation of non-emissive NFA triplet excitons; in the benchmark PM6:Y6 blend(5), this fraction reaches 90%, reducing the open-circuit voltage by 60 mV. We prevent recombination via this non-radiative channel by engineering substantial hybridization between the NFA triplet excitons and the spin-triplet charge-transfer excitons. Modelling suggests that the rate of back charge transfer from spin-triplet charge-transfer excitons to molecular triplet excitons may be reduced by an order of magnitude, enabling re-dissociation of the spin-triplet charge-transfer exciton. We demonstrate NFA systems in which the formation of triplet excitons is suppressed. This work thus provides a design pathway for organic solar cells with power conversion efficiencies of 20% or more. A substantial pathway for energy loss in organic solar cells may be suppressed by engineering hybridization between non-fullerene acceptor triplet excitons and spin-triplet charge transfer excitons.

Subject headings

NATURVETENSKAP  -- Biologi -- Cellbiologi (hsv//swe)
NATURAL SCIENCES  -- Biological Sciences -- Cell Biology (hsv//eng)

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