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May 31, 2026Advanced Materials1 citations

Doping Manipulation of Donor/Acceptor by Perovskite Quantum Dots Enables >20.5% Organic Nonfullerene Solar Cells

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BLBo LiDLDu LiXZX Zhao

Key Points

  • This research focuses on enhancing the performance of organic nonfullerene solar cells through a doping strategy using perovskite quantum dots.
  • Used perovskite quantum dots (FAPbI3) in donor (D18) and acceptor (L8BO) layers separately.
  • Performed comprehensive characterizations of the solar cell's structure and performance.
  • Optimized the device configuration to achieve maximum power conversion efficiency.
  • Achieved a power conversion efficiency of 20.55% with a fill factor greater than 82%.
  • Doping reduced energy disorder and enhanced crystallinity, improving charge transport.
  • Notable reduction in non-radiative recombination and increased carrier lifetime.

Abstract

ABSTRACT Organic nonfullerene solar cells (ONSCs) have achieved remarkable progress, with power conversion efficiency (PCE) now surpassing 20%. To further improve the device performance, herein, we demonstrate a facile doping strategy using emerging perovskite quantum dots (QDs), which is anticipated to address critical issues like high exciton binding energy and limited charge transport. In a typical sequentially deposited planar heterojunction (PHJ) ONSCs, FAPbI 3 QDs were introduced into the donor polymer (D18) and acceptor molecule (L8BO) layers separately, which enables precise manipulation of the vertical doping and decouples the influence of QDs on donor/acceptor. Comprehensive characterizations reveal that the FAPbI 3 QD doping reduces energy disorder, enhances crystallinity, and promotes cascade energy alignment, thereby facilitating exciton dissociation and charge transport. Moreover, FAPbI 3 QDs act as energy mediators, prolonging carrier lifetime and suppressing non‐radiative recombination. The optimal D18/L8BO device with simultaneous doping of donor/acceptor achieves a best PCE of 20.55% with a high fill factor exceeding 82%. We also demonstrate the application of QD doping strategy in varying representative donor/acceptor systems, paving a new avenue for minimizing energy loss and advancing the efficiency of ONSCs.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/6a1bd1f65783ba022b6fd6c8https://doi.org/10.1002/adma.73530
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