Li Hui, Li Huanhuan, Gu Jie, He Fei, Peng Hao, Tao Ye, Tian Dan, Yang Qingqing, Li Ping, Zheng Chao, Huang Wei, Chen Runfeng
Key Laboratory for Organic Electronics and Information Displays & Jiangsu Key Laboratory for Biosensors, Institute of Advanced Materials (IAM), Nanjing University of Posts & Telecommunications 9 Wenyuan Road Nanjing 210023 China
College of Materials Science and Engineering, Nanjing Forestry University Nanjing 210037 China.
Chem Sci. 2021 Jan 12;12(10):3580-3586. doi: 10.1039/d0sc06025a.
Designing organic afterglow materials with a high efficiency and long lifetime is highly attractive but challenging because of the inherent competition between the luminescence efficiency and lifetime. Here, we propose a simple yet efficient strategy, namely fluorine-induced aggregate-interlocking (FIAI), to realize both an enhanced efficiency and elongated lifetime of afterglow materials by stimulating the synergistic effects of the introduced fluorine atoms to efficiently promote intersystem crossing (ISC) and intermolecular non-covalent interactions for facilitating both the generation of triplet excitons and suppression of non-radiative decays. Thus, the fluorine-incorporated afterglow molecules exhibit greatly enhanced ISC with a rate constant up to 5.84 × 10 s and suppressed non-radiative decay down to 0.89 s, resulting in efficient organic afterglow with a simultaneously improved efficiency up to 10.5% and a lifetime of 1.09 s. Moreover, accompanied by the efficient phosphorescence emission especially at cryogenic temperature, color-tunable afterglow was also observed at different temperatures. Therefore, tri-mode multiplexing encryption devices by combining lifetime, temperature and color, and visual temperature sensing were successfully established. The FIAI strategy by addressing fundamental issues of afterglow emission paves the way to develop high-performance organic afterglow materials, opening up a broad prospect of aggregated and excited state tuning of organic solids for emission lifetime-resolved applications.
设计具有高效率和长寿命的有机余辉材料极具吸引力,但由于发光效率和寿命之间存在内在竞争,这一过程充满挑战。在此,我们提出一种简单而有效的策略,即氟诱导聚集互锁(FIAI),通过激发引入的氟原子的协同效应,有效促进系间窜越(ISC)和分子间非共价相互作用,以实现余辉材料效率的提高和寿命的延长,从而促进三重态激子的产生并抑制非辐射衰变。因此,含氟余辉分子表现出大大增强的ISC,速率常数高达5.84×10 s,非辐射衰变抑制至0.89 s,从而产生高效的有机余辉,效率同时提高到10.5%,寿命达到1.09 s。此外,伴随着高效的磷光发射,尤其是在低温下,在不同温度下还观察到了颜色可调的余辉。因此,成功建立了结合寿命、温度和颜色的三模式复用加密装置以及视觉温度传感。通过解决余辉发射的基本问题,FIAI策略为开发高性能有机余辉材料铺平了道路,为发射寿命分辨应用的有机固体聚集和激发态调控开辟了广阔前景。