Carbazole‐Substituted Heptazines With Hund Order of Excited Singlet/Triplet States for OLEDs

ABSTRACT Monomeric heptazines have recently attracted significant attention for applications in photocatalysis, optics, and organic electronics. Many heptazine derivatives are known to have high triplet energies that are close or even above their singlet energy (anti‐Hund) that can be useful for applications in high efficiency organic light‐emitting diodes (OLEDs). We report a convenient synthetic route to asymmetric bis‐diarylamino carbazole‐substituted heptazines obtained in high yields via sequential nucleophilic substitutions of trichloroheptazine. These materials were thoroughly characterized by NMR spectroscopy and single‐crystal X‐ray crystallography. Furthermore, their photophysical properties were systematically examined to determine the energies of excited singlet/triplet states. Photophysical measurements and high‐level quantum chemical calculations demonstrate that bis‐diarylamino carbazole‐substituted heptazines are triplet wide bandgap materials that obey Hund's rule with T 1 lying lower in energy than S 1 . Detailed analysis of the electronic structure of the excited states reveals that their nature differs significantly from that of anti‐Hund heptazines with substantial localization/contribution of charge transfer character to carbazole and diarylamine moieties, which is responsible for Hund order of excited singlet/triplet states. Finally, application of bis‐diarylamino carbazole‐substituted heptazine 1 as wide bandgap host material for OLEDs does not interfere with triplet dynamics of emissive phosphor consistently with Hund order of excited singlet/triplet states

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Publication Details

Journal
Chemistry - A European Journal
Published
2026-08-25
DOI
https://doi.org/10.1002/chem.71621
Primary Topic
Organic Light-Emitting Diodes Research
Type
article
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article

Carbazole‐Substituted Heptazines With Hund Order of Excited Singlet/Triplet States for OLEDs

Glenn P. A. Yap, Yunlong Zou, Dong Gil Kim, Hjalti Skulason et al.
Chemistry - A European Journal
Organic Light-Emitting Diodes Research
article

Carbazole‐Substituted Heptazines With Hund Order of Excited Singlet/Triplet States for OLEDs

Glenn P. A. Yap, Yunlong Zou, Dong Gil Kim, Hjalti Skulason, Vyacheslav V. Diev, Hong‐Yeop Na, Денис Кондаков, Xiaofan Ren
article en

Abstract

ABSTRACT Monomeric heptazines have recently attracted significant attention for applications in photocatalysis, optics, and organic electronics. Many heptazine derivatives are known to have high triplet energies that are close or even above their singlet energy (anti‐Hund) that can be useful for applications in high efficiency organic light‐emitting diodes (OLEDs). We report a convenient synthetic route to asymmetric bis‐diarylamino carbazole‐substituted heptazines obtained in high yields via sequential nucleophilic substitutions of trichloroheptazine. These materials were thoroughly characterized by NMR spectroscopy and single‐crystal X‐ray crystallography. Furthermore, their photophysical properties were systematically examined to determine the energies of excited singlet/triplet states. Photophysical measurements and high‐level quantum chemical calculations demonstrate that bis‐diarylamino carbazole‐substituted heptazines are triplet wide bandgap materials that obey Hund's rule with T 1 lying lower in energy than S 1 . Detailed analysis of the electronic structure of the excited states reveals that their nature differs significantly from that of anti‐Hund heptazines with substantial localization/contribution of charge transfer character to carbazole and diarylamine moieties, which is responsible for Hund order of excited singlet/triplet states. Finally, application of bis‐diarylamino carbazole‐substituted heptazine 1 as wide bandgap host material for OLEDs does not interfere with triplet dynamics of emissive phosphor consistently with Hund order of excited singlet/triplet states

Chemistry - A European Journal
Wilmington University (US), Experimental Station (US), Korea Electronics Technology Institute (KR), University of Delaware (US)
Openalex Percentile: Top 19%
Organic Light-Emitting Diodes Research
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