4.6 Article

A unified description of non-radiative voltage losses in organic solar cells

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NATURE ENERGY
卷 6, 期 8, 页码 799-806

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NATURE PORTFOLIO
DOI: 10.1038/s41560-021-00843-4

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资金

  1. Swedish Strategic Research Foundation [FFL 18-0322]
  2. Swedish Research Council VR [2016-06146, 2018-06048, 2019-00677]
  3. Swedish Government Strategic Research Area in Materials Science on Functional Materials at Linkoping University [2009-00971]
  4. Department of the Navy, Office of Naval Research [N00014-20-1-2110]
  5. University of Arizona
  6. Swedish Research Council [2016-06146, 2019-00677, 2018-06048] Funding Source: Swedish Research Council

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Researchers provide a general description of non-radiative voltage losses and find that the latest organic solar cells based on non-fullerene acceptors can reduce this loss. The study shows that photoluminescence yield is a critical factor in determining the lower limit of non-radiative voltage losses.
Organic solar cells based on non-fullerene acceptors have enabled high efficiencies yet their charge dynamics and its impact on the photovoltaic parameters are not fully understood. Now, Chen et al. provide a general description of non-radiative voltage losses in both fullerene and non-fullerene solar cells. Recent advances in organic solar cells based on non-fullerene acceptors (NFAs) come with reduced non-radiative voltage losses (Delta V-nr). Here we show that, in contrast to the energy-gap-law dependence observed in conventional donor:fullerene blends, the Delta V-nr values in state-of-the-art donor:NFA organic solar cells show no correlation with the energies of charge-transfer electronic states at donor:acceptor interfaces. By combining temperature-dependent electroluminescence experiments and dynamic vibronic simulations, we provide a unified description of Delta V-nr for both fullerene- and NFA-based devices. We highlight the critical role that the thermal population of local exciton states plays in low-Delta V-nr systems. An important finding is that the photoluminescence yield of the pristine materials defines the lower limit of Delta V-nr. We also demonstrate that the reduction in Delta V-nr (for example, <0.2 V) can be obtained without sacrificing charge generation efficiency. Our work suggests designing donor and acceptor materials with high luminescence efficiency and complementary optical absorption bands extending into the near-infrared region.

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