Issue 7, 2022

Toward phosphorescent and delayed fluorescent carbon quantum dots for next-generation electroluminescent displays

Abstract

Featuring a combination of size-tunable emission wavelengths, high thermal stability, and low cytotoxicity, carbon quantum dots (CQDs) have opened up a new possibility for next-generation displays. However, the theoretically highest external quantum efficiency (EQE) limit of electroluminescent light-emitting diodes (LEDs) based on fluorescent CQDs is 5% due to the spin-forbidden nature of triplet state transitions. Comparatively, phosphorescent or delayed fluorescence CQDs are expected to overcome this limitation and allow the EQE of the devices to reach nearly 25%. At present, the preparation of CQDs with good solution processability, narrow bandwidth emission, and full-color phosphorescence or delayed fluorescence still faces great challenges. Herein, this review aims to offer a materials-chemistry perspective to tailor highly efficient phosphorescent or delayed fluorescence CQDs and present their applications in electroluminescent LEDs for the display technology. The mechanism and design principle of pure organic phosphorescence and delayed fluorescence as well as their recent advances in electroluminescent devices are summarized. Furthermore, we focus on the prospects and challenges for phosphorescent and delayed fluorescence CQDs in displays. We hope that this review will further stimulate the development of high-performance CQD-based electroluminescent displays with a combined effort from different disciplines.

Graphical abstract: Toward phosphorescent and delayed fluorescent carbon quantum dots for next-generation electroluminescent displays

Article information

Article type
Review Article
Submitted
08 септ. 2021
Accepted
04 окт. 2021
First published
28 окт. 2021

J. Mater. Chem. C, 2022,10, 2333-2348

Toward phosphorescent and delayed fluorescent carbon quantum dots for next-generation electroluminescent displays

T. Yuan, T. Meng, Y. Shi, X. Song, W. Xie, Y. Li, X. Li, Y. Zhang and L. Fan, J. Mater. Chem. C, 2022, 10, 2333 DOI: 10.1039/D1TC04271H

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