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Solid-State Packing Controls Exciton Delocalization and Photophysics in Nonfullerene Acceptors

  • Robert J. E. Westbrook
  • , Andrew J. Levin
  • , Wei Gao
  • , Urvashi Bothra
  • , Saied Md Pratik
  • , Baobing Fan
  • , Francis R. Lin
  • , Qian-Qian Zhang
  • , Khoa Ngo
  • , Werner Kaminsky
  • , Jean-Luc Brédas
  • , Veaceslav Coropceanu*
  • , Alex K.-Y. Jen*
  • , Michael F. Toney*
  • , David S. Ginger*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

We engineer molecular packing in five derivatives of the nonfullerene acceptor Y6. Using transient absorption spectroscopy, we find evidence of the formation of a delocalized exciton in addition to the local exciton in neat films of the acceptors. Following selective photoexcitation of the acceptors in donor/acceptor blends with D18, we observe anion formation on the same timescale as in neat acceptor films, suggesting that D18 is a bystander to charge generation after photoexcitation of the acceptors. We quantify the recombination kinetics of the delocalized excitons with the monomolecular recombination constant (a) and find that both the hole transfer yield and the internal quantum efficiency in photovoltaic devices increase for acceptor films with lower a. In A1, relatively localized excitons with a limited charge transfer character have fast recombination kinetics (a = 3.2 × 1010 s–1), leading to the lowest IQE (83.7%). In T1, more delocalized excitons with stronger charge transfer character have slower recombination kinetics (a = 5.3 × 10s–1), leading to a higher IQE (97.2%). Grazing incidence wide-angle X-ray scattering of π–π stacking regions reveals that the tendency to pack face-on is a key driver of exciton delocalization across acceptors with similar molecular packing. We anticipate that this newly identified structural lever will help propel organic photovoltaics toward 20% efficiency. © 2025 American Chemical Society.
Original languageEnglish
Pages (from-to)30199-30209
Number of pages11
JournalJournal of the American Chemical Society
Volume147
Issue number33
Online published5 Aug 2025
DOIs
Publication statusPublished - 20 Aug 2025

Funding

The work done at the University of Washington was primarily supported by the Office of Naval Research (N00014-20-1-2191 and N00014-24-1-2103), which supported the transient absorption spectroscopy, time-resolved PL, and all contributions to experimental design, analysis, and writing by R.J.E.W. and D.S.G. R.J.E.W. recognizes support from the Momental Foundation via the Mistletoe Fellowship. M.F.T. and A.L. acknowledge ONR support for the purchase of a Xenocs SAXS instrument through Award: N00014-22-1-2361. M.F.T. and A.L. acknowledge support from the ONR grant ONR 14-21-1-2097. M.F.T. and A.L. acknowledge support from the Complex Materials Scattering (CMS) beamline at the National Synchrotron Light Source II (NSLS-II), which is a US DOE Office of Science Facility located at Brookhaven National Laboratory (BNL), operating under Contract No. DE-SC0012704. M.F.T. and A.L. acknowledge resources of the Advanced Light Source (beamline 7.3.3), which are supported by the U.S. DOE Office of Science, Basic Energy Sciences under Contract #DE-AC02-05CH11231. A.K.Y.J., W.G., B.F., and F.R.L. acknowledge support from the CRS grant (CRS_CityU104/23) from the Research Grants Council of Hong Kong, which supports the synthesis and characterization of novel functional materials. The work at Arizona was supported by the Office of Naval Research (Awards No. N00014-24-1-2114), and the University of Arizona Institute of Energy Solutions and Office for Research, Innovation, & Impact for support via the Arizona Technology and Research Initiative Fund. The authors also gratefully acknowledge conversations with Dr. José Manuel Marín Beloqui and Barnaby Lewis for their kind advice on global analysis; Tim Pollock of the University of Washington Molecular Analysis Facility for his experimental assistance and insightful discussions; Mike De Siena of the University of Washington Photonics Research Center and Research Training Testbeds; and Kui Jiang and Nan Zhang at the City University of Hong Kong for experimental assistances. The authors thank the reviewers for their insightful comments and constructive suggestions, which undoubtedly improved the quality and clarity of this manuscript.

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

RGC Funding Information

  • RGC-funded

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