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March 29, 2026Macromolecular Rapid Communications0 citations

Layer‐To‐Layer Direct Recombination in Organic Planar p/n Heterojunctions

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SCS.G. ChenSouth China University of TechnologySSShi‐Jian SuSouth China University of TechnologyDCDongcheng ChenHefei University of Technology

Key Points

  • To develop a model for recombination processes in organic planar p-n heterojunctions using the Miller-Abrahams theory.
  • Deriving a recombination model based on Miller-Abrahams hopping theory.
  • Applying the model to self-consistent 1D drift-diffusion simulations.
  • Investigating temperature-dependent current density-voltage characteristics.
  • The model replicates experimental current density-voltage trends accurately.
  • Enhanced hopping frequency improves recombination efficiency.
  • Quantitative assessment of intermolecular interaction strength between distinct molecules is enabled.

Abstract

ABSTRACT Organic planar pn heterojunctions demonstrate distinct optoelectronic properties governed by organic‐organic interface interactions, while the fundamental recombination mechanisms lack a comprehensive understanding. Herein, we derive a recombination model applicable to planar p‐n heterojunction systems through implementation of the Miller‐Abrahams (MA) hopping theory. Integrating the model into self‐consistent 1D drift‐diffusion simulations yields temperature‐dependent current density–voltage characteristics that reproduce experimental trends, validating its predictive capability. This model demonstrates that enhancing hopping frequency and strengthening delocalization between molecules are critical for optimizing recombination efficiency, thus providing an effective approach for performance improvement. The developed model is broadly applicable to planar p‐n heterojunction systems, enabling quantitative assessment of intermolecular interaction strength between two distinct molecules.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/69c8c277de0f0f753b39cd29https://doi.org/10.1002/marc.202500950
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