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March 13, 20260 citations

Dichotomous Initial Exciton Conversion at a DPP2Py2T-PCBM Interface: Insights from Embedded GW-Bethe-Salpeter Equation Calculations.

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VSVivek SundaramBBBjörn Baumeier

Key Points

  • This research aims to explore how initial photoexcitation influences charge generation efficiency in organic solar cells.
  • Utilized quantum-quantum-classical embedded GW-Bethe-Salpeter equation calculations
  • Analyzed excitonic energy levels and electronic couplings
  • Employed Marcus theory to assess reorganization energies
  • Examined conversion dynamics at the DPP-PCBM interface
  • Discovered varying charge-transfer excitations with a 0.30 eV separation between significant CT states
  • Determined an activation barrier for polymer local excitations significantly higher than fullerene local excitations
  • Found that donor photoexcitation generates a CT excitation with a 0.16-0.27 eV lower electron-hole binding energy leading to faster charge separation

Abstract

Depending on the initial photoexcitation of the donor or acceptor phase, different efficiencies of charge generation can be observed in organic solar cells. We investigate the origin of this dichotomy by simulations based on quantum-quantum-classical embedded GW-Bethe-Salpeter equation of conversion dynamics from localized to charge-transfer (CT) excitations at the interface of a diketopyrrolopyrrole (DPP) polymer and fullerene. Specifically, we determine the excitonic energy levels, their electronic couplings, and the reorganization energies for the respective conversion processes within Marcus theory. Our calculations yield a variety of CT-type excitations of different characters with the lowest integer CT excitations of relevance for charge generation separated by 0.30 eV. Further analysis reveals that the activation barrier for conversion to the lowest CT state is significantly higher (0.25 eV) for the polymer LE than for the fullerene LE (0.05 eV), leading to a preferred population of the higher, less strongly bound CT state from the photoexcited donor. From a population dynamics model, we find that, indeed, on the time scale of one picosecond after the respective excitation, the donor excitation leads to the formation of a CT excitation with on average 0.16-0.27 eV lower electron-hole binding energy, providing a pathway to faster charge separation.

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Cite This Study

Sundaram et al. (2026) studied this question.

synapsesocial.com/papers/69b3ac3f02a1e69014ccdc21https://doi.org/10.1021/acs.jpcb.5c08651
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