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Single-junction organic solar cells with over 19% efficiency enabled by a refined double-fibril network morphology

  • Lei Zhu
  • , Ming Zhang
  • , Jinqiu Xu
  • , Chao Li
  • , Jun Yan*
  • , Guanqing Zhou
  • , Wenkai Zhong
  • , Tianyu Hao
  • , Jiali Song
  • , Xiaonan Xue
  • , Zichun Zhou
  • , Rui Zeng
  • , Haiming Zhu
  • , Chun Chao Chen
  • , Roderick C.I. MacKenzie
  • , Yecheng Zou
  • , Jenny Nelson
  • , Yongming Zhang
  • , Yanming Sun*
  • , Feng Liu*
  • *Corresponding author for this work
  • Shanghai Jiao Tong University
  • Beihang University
  • Imperial College London
  • Zhejiang University
  • Durham University
  • State Key Laboratory of Fluorinated Functional Membrane Materials

Research output: Contribution to journalArticlepeer-review

Abstract

In organic photovoltaics, morphological control of donor and acceptor domains on the nanoscale is the key for enabling efficient exciton diffusion and dissociation, carrier transport and suppression of recombination losses. To realize this, here, we demonstrated a double-fibril network based on a ternary donor–acceptor morphology with multi-length scales constructed by combining ancillary conjugated polymer crystallizers and a non-fullerene acceptor filament assembly. Using this approach, we achieved an average power conversion efficiency of 19.3% (certified 19.2%). The success lies in the good match between the photoelectric parameters and the morphological characteristic lengths, which utilizes the excitons and free charges efficiently. This strategy leads to an enhanced exciton diffusion length and a reduced recombination rate, hence minimizing photon-to-electron losses in the ternary devices as compared to their binary counterparts. The double-fibril network morphology strategy minimizes losses and maximizes the power output, offering the possibility of 20% power conversion efficiencies in single-junction organic photovoltaics.

Original languageEnglish
Pages (from-to)656-663
Number of pages8
JournalNature Materials
Volume21
Issue number6
DOIs
StatePublished - Jun 2022

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