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Maximizing Room-Temperature Red Phosphorescence in Contorted Hexabenzocoronene Derivatives

  • Marko R. Ivancevic
  • , Moses D. Ogbaje
  • , Jesse A. Wisch
  • , Daniel G. Oblinsky
  • , Alice S. Fergerson
  • , Emily C. Davidson
  • , Gregory D. Scholes
  • , Barry P. Rand
  • , Chad Risko
  • , Quinn C. Burlingame
  • , Yueh Lin Loo

Research output: Contribution to journalArticlepeer-review

Abstract

Organic molecules exhibiting second-scale room-temperature phosphorescence (RTP) in the red/near-infrared are particularly rare because low-energy excited states that are characteristic of these chromophores are susceptible to nonradiative deactivation. Here, we observe second-scale red RTP from contorted hexabenzocoronene (cHBC) embedded in a rigid polymer. This RTP is uniquely efficient as approximately 23% of the steady-state photoluminescence originates from triplets. We propose that this efficient triplet generation stems from intersystem crossing (ISC) that outcompetes symmetry-forbidden fluorescence. Density functional theory and time-dependent density functional theory calculations suggest that ISC occurs from the lowest energy singlet state of cHBC into a nearly resonant triplet state. Perdeuterating cHBC substitutes C–H stretches with lower-energy C–D stretches, which further suppresses nonradiative recombination and prolongs red RTP. The phosphorescence lifetime of perdeuterated cHBC-polymer composites exceeds 5 s, and has a steady-state phosphorescence fraction of 44%.

Original languageEnglish
Pages (from-to)5753-5759
Number of pages7
JournalChemistry of Materials
Volume38
Issue number11
DOIs
StatePublished - Jun 9 2026

Bibliographical note

Publisher Copyright:
© 2026 The Authors. Published by American Chemical Society.

Funding

M.R.I., Q.C.B., Y.-L.L., M.D.O., and C.R. acknowledge support by the National Science Foundation’s Collaborative Research: DMREF: Organic Semiconductors by Computationally Accelerated Refinement (OSCAR) with DMR1627925 and Accelerating the Commercial Readiness of Organic Semiconductor Systems (ACROSS) with award number DMR2323424. M.D.O. and C.R. acknowledge the University of Kentucky (UK) Center for Computational Sciences and Information Technology Services Research Computing for their fantastic support and collaboration, and use of the Lipscomb Compute Cluster and associated research computing resources. J.A.W., D.G.O., B.P.R., and G.D.S. acknowledge support from BioLEC, an Energy Frontier Research Center funded by the U.S. Department of Energy, Office of Science, Basic Energy Sciences under Award #DE-SC0019370. A.S.F. and E.C.D. gratefully acknowledge support from Princeton PCCM SEED funds (MRSEC DMR-1420541). The content of this work is the responsibility of the authors and does not represent the official view of the funding agencies listed above.

FundersFunder number
University of Kentucky
U.S. Department of Energy
Office of Science Programs
National Science Foundation Arctic Social Science ProgramDMR1627925, DMR2323424
DOE Basic Energy Sciences-SC0019370, MRSEC DMR-1420541

    ASJC Scopus subject areas

    • General Chemistry
    • General Chemical Engineering
    • Materials Chemistry

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