4.8 Article

Can Organic Solar Cells Beat the Near-Equilibrium Thermodynamic Limit?

期刊

JOURNAL OF PHYSICAL CHEMISTRY LETTERS
卷 13, 期 28, 页码 6514-6519

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.jpclett.2c01565

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资金

  1. Swedish Research Counsil (Vetenskapsradet) [OPV2.0 2016-06146]
  2. German Research Foundation under Germany's Excellence Strategy [2082/1-390761711]
  3. Carl Zeiss Foundation

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A loss channel in organic photovoltaic cells, caused by the thermalization of charge carriers in the density of states due to energetic disorder, has been demonstrated to be mitigated through carefully designed morphologies. The presence of funnel-shaped domains promotes directed transport of charge carriers, leading to improved performance.
Despite an impressive increase over the past decade, experimentally determined power conversion efficiencies of organic photovoltaic cells still fall considerably below the theoretical upper bound for near-equilibrium solar cells. Even in otherwise optimized devices, a prominent yet incompletely understood loss channel is the thermalization of photogenerated charge carriers in the density of states that is broadened by energetic disorder. Here, we demonstrate by extensive numerical modeling how this loss channel can be mitigated in carefully designed morphologies. Specifically, we show how funnel-shaped donor-and acceptor-rich domains in the phase-separated morphology that are characteristic of organic bulk heterojunction solar cells can promote directed transport of positive and negative charge carriers toward the anode and cathode, respectively. We demonstrate that in optimized funnel morphologies this kinetic, nonequilibrium effect, which is boosted by the slow thermalization of photogenerated charges, allows one to surpass the near-equilibrium limit for the same material in the absence of gradients.

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