Fusing Multi‐Resonance Framework with Platinum(II) Complex via Cyclometalation for Narrowband Blue TADF

ABSTRACT Multi‐resonance (MR)‐type emitters based on B‐ and N‐embedded polyaromatic hydrocarbons are among the most promising candidates for ultrapure organic light‐emitting diodes (OLEDs), owing to their high photoluminescence quantum yields and narrow emission spectra. However, their application as nonsensitized thermally activated delayed fluorescence (TADF) emitters is hindered by long emission lifetimes. Herein, we describe an approach to improving blue MR‐TADF emissions by incorporating a DBANA‐derived framework into Pt(II) complexes via cyclometalation. By judiciously combining the framework with an N ‐heterocyclic carbene to form bidentate chromophoric ligands, the MR‐B/N core still dominates the lowest‐lying singlet and triplet excited states of the resulting Pt(II) complexes. The Pt‐modified MR emitters exhibit efficient blue emissions with peaks at approximately 460 nm and a full width at half‐maximum of < 30 nm. The incorporation of the Pt atom shortens the delayed fluorescence lifetime to 5.0–11.4 µs. OLEDs based on selected Pt(II) complexes show pure blue electroluminescence with emission maxima at 456 nm and CIE y values of 0.15–0.17, accompanied by reduced efficiency roll‐off compared to the purely organic MR‐B/N analogue. This study demonstrates a promising strategy for narrowband blue TADF emitters by merging MR excited‐state character with the heavy‐metal effect via bidentate chelation.

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Publication Details

Journal
Angewandte Chemie
Published
2026-09-04
DOI
https://doi.org/10.1002/ange.6004957
Primary Topic
Organic Light-Emitting Diodes Research
Type
article
Field-Weighted Citation Impact
0.00

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article

Fusing Multi‐Resonance Framework with Platinum(II) Complex via Cyclometalation for Narrowband Blue TADF

Xiaojun Yin, Siyu Huang, Chuluo Yang, Kai Li et al.
Angewandte Chemie
Organic Light-Emitting Diodes Research
article

Fusing Multi‐Resonance Framework with Platinum(II) Complex via Cyclometalation for Narrowband Blue TADF

Xiaojun Yin, Siyu Huang, Chuluo Yang, Kai Li, Li Jiang, Huachao Liu, Weixue Fan, Rongfang Zeng, Sijie Xian, Yi Zhang
article en

Abstract

ABSTRACT Multi‐resonance (MR)‐type emitters based on B‐ and N‐embedded polyaromatic hydrocarbons are among the most promising candidates for ultrapure organic light‐emitting diodes (OLEDs), owing to their high photoluminescence quantum yields and narrow emission spectra. However, their application as nonsensitized thermally activated delayed fluorescence (TADF) emitters is hindered by long emission lifetimes. Herein, we describe an approach to improving blue MR‐TADF emissions by incorporating a DBANA‐derived framework into Pt(II) complexes via cyclometalation. By judiciously combining the framework with an N ‐heterocyclic carbene to form bidentate chromophoric ligands, the MR‐B/N core still dominates the lowest‐lying singlet and triplet excited states of the resulting Pt(II) complexes. The Pt‐modified MR emitters exhibit efficient blue emissions with peaks at approximately 460 nm and a full width at half‐maximum of < 30 nm. The incorporation of the Pt atom shortens the delayed fluorescence lifetime to 5.0–11.4 µs. OLEDs based on selected Pt(II) complexes show pure blue electroluminescence with emission maxima at 456 nm and CIE y values of 0.15–0.17, accompanied by reduced efficiency roll‐off compared to the purely organic MR‐B/N analogue. This study demonstrates a promising strategy for narrowband blue TADF emitters by merging MR excited‐state character with the heavy‐metal effect via bidentate chelation.

Angewandte Chemie
Shenzhen University (CN)
National Natural Science Foundation of China, Shenzhen University, Shenzhen Science and Technology Innovation Program
Openalex Percentile: Top 20%
Organic Light-Emitting Diodes Research
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