Versatile Thermally Activated Delayed Fluorescence Material Enabling High Efficiencies in both Photodynamic Therapy and Deep-Red/NIR Electroluminescence
Research output: Journal Publications and Reviews › RGC 21 - Publication in refereed journal › peer-review
Author(s)
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Detail(s)
Original language | English |
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Pages (from-to) | 2549-2558 |
Journal / Publication | ACS Nano |
Volume | 19 |
Issue number | 2 |
Online published | 9 Jan 2025 |
Publication status | Published - 21 Jan 2025 |
Link(s)
Abstract
Thermally activated delayed fluorescence (TADF) materials have received increasing attention from organic electronics to other related fields, such as bioapplications and photocatalysts. However, it remains a challenging task for TADF emitters to showcase the versatility concurrent with high performance in multiple applications. Herein, we first present such a proof-of-concept TADF material, namely, QCN-SAC, through strategically manipulating exciton dynamics. On the one hand, QCN-SAC displays obvious aggregate-induced deep-red/near-infrared emission with a high radiative rate beyond 107 s-1, thereby demonstrating nearly 100% exciton utilization under oxygen-free conditions. In a QCN-SAC-based nondoped organic light-emitting diode (OLED), a superb external quantum efficiency of 16.4% can be reached with a peak at 708 nm. On the other hand, QCN-SAC also exhibits a high intersystem crossing rate over 108 s-1 without leveraging the heavy-atom effect, which makes QCN-SAC-based nanoparticles perform well in boosting reactive oxygen species generation for imaging-guided photodynamic therapy (PDT). This work presents a fundamental principle for designing high-performance all-in-one TADF molecules for OLED and PDT applications. This discovery holds promise for advancing the development of versatile TADF materials with a range of uses in the near future. © 2025 American Chemical Society.
Research Area(s)
- deep-red/near-infrared electroluminescence, exciton dynamics, nondoped organic light-emitting diodes, photodynamic therapy, thermally activated delayed fluorescence
Citation Format(s)
Versatile Thermally Activated Delayed Fluorescence Material Enabling High Efficiencies in both Photodynamic Therapy and Deep-Red/NIR Electroluminescence. / Wang, Hui; Gao, Yijian; Chen, Jiaxiong et al.
In: ACS Nano, Vol. 19, No. 2, 21.01.2025, p. 2549-2558.
In: ACS Nano, Vol. 19, No. 2, 21.01.2025, p. 2549-2558.
Research output: Journal Publications and Reviews › RGC 21 - Publication in refereed journal › peer-review