Dilution effect for highly efficient multiple-component organic solar cells

  • Lijian Zuo
  • , Sae Byeok Jo
  • , Yaokai Li
  • , Yuhuan Meng
  • , Ryan J. Stoddard
  • , Yun Liu
  • , Francis Lin
  • , Xueliang Shi
  • , Feng Liu
  • , Hugh W. Hillhouse
  • , David S. Ginger
  • , Hongzheng Chen*
  • , Alex K.Y. Jen*
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

163 Scopus citations

Abstract

Although the multiple-component (MC) blend strategy has been frequently used as a very effective way to improve the performance of organic solar cells (OSCs), there is a strong need to understand the fundamental working mechanism and material selection rule for achieving optimal MC-OSCs. Here we present the ‘dilution effect’ as the mechanism for MC-OSCs, where two highly miscible components are molecularly intermixed. Contrary to the aggregation-induced non-radiative decay, the dilution effect enables higher luminescence quantum efficiencies and open-circuit voltages (VOC) in MC-OSCs via suppressed electron–vibration coupling. The continuously broadened bandgap together with reduced electron–vibration coupling also explains the composition-dependent VOC in ternary blends well. Moreover, we show that electrons can transfer between different acceptors, depending on the energy offset between them, which contributes to the largely unperturbed charge transport and high fill factors in MC-OSCs. The discovery of the dilution effect enables the demonstration of a high power conversion efficiency of 18.31% in an MC-OSC.

Original languageEnglish
Pages (from-to)53-60
Number of pages8
JournalNature Nanotechnology
Volume17
Issue number1
DOIs
StatePublished - Jan 2022
Externally publishedYes

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