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Multiple resonance thermally activated delayed fluorescence emitters containing novel S-based acceptor with narrowed FWHM and enhanced EQE

  • Xiao Xue Xia
  • , Guo Yuan
  • , Feng Ming Xie
  • , Qiang Zhang
  • , Yan Qing Li*
  • , Ze Hua
  • , Jian Xin Tang
  • , Xin Zhao
  • *Corresponding author for this work
  • Suzhou University of Science and Technology
  • East China Normal University
  • Soochow University

Research output: Contribution to journalArticlepeer-review

Abstract

Multiple resonance thermally activated delayed fluorescence (MR-TADF) materials have extensive application in the field of optoelectronics because of their glamorous properties. Previously, MR-TADF molecular design strategies based on sulfur atom (S) have the deficiencies of broad full width at half maximum (FWHM) and low maximum external quantum efficiency (EQEmax). Thus, this work designed and synthesized a novel weak acceptor containing S atom N2SO and linked it with BCzBN to form a new MR-TADF material N2SOBN. N2SOBN exhibited emissions at 494 nm in toluene with photoluminescence quantum yields (PQLY) up to 98% in doped film. N2SOBN-based OLED both had the impressive merits of narrower FWHM (28 nm) and remarkable EQEmax (28%), which had a cutting-edge position in the S-based MR-TADF materials. Surprisingly, N2SOBN enantiomers showcased circularly polarized photoluminescence (CPL) characteristics with dissymmetry factors (gPL) up to 3.25 × 10−4/−2.91 × 10−4 in toluene. This work provided a viable methodology for the research on S-based MR-TADF with narrower FWHM, enhanced EQE and chiroptical properties.

Original languageEnglish
Article number173722
JournalChemical Engineering Journal
Volume530
DOIs
StatePublished - 15 Feb 2026

Keywords

  • Circularly polarized photoluminescence
  • High maximum external quantum efficiency
  • Multiple resonance thermally activated delayed fluorescence
  • Narrow full width at half maximum
  • Novel sulfur-based acceptor

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