Beijing Key Laboratory of Energy Conversion and Storage Materials, College of Chemistry, and Key Laboratory of Radiopharmaceuticals, Ministry of Education, Beijing Normal University, Beijing, 100875, P. R. China.
Adv Sci (Weinh). 2022 May;9(16):e2200992. doi: 10.1002/advs.202200992. Epub 2022 Apr 10.
Persistent luminescence has attracted great attention due to the unique applications in molecular imaging, photodynamic therapy, and information storage, among many others. However, tuning the dynamic persistent luminescence through molecular design and materials engineering remains a challenge. In this work, the first example of excitation-dependent persistent luminescence in a reverse mode for smart optical materials through tailoring the excited-state proton transfer process of metal cytosine halide hybrids is reported. This approach enables ultralong phosphorescence and thermally activated delayed fluorescence emission colors highly tuned by modulation of excitation wavelength, time evolution, and temperature, which realize multi-mode dynamic color adjustment from green to blue or cyan to yellow-green. At the single crystal level, the 2D excitation/space/time-resolved optical waveguides with triple color conversion have been constructed on the organic-metal halide microsheets, which represent a new strategy for multi-dimensional information encryption and optical logic gate applications.
由于在分子成像、光动力疗法和信息存储等众多领域的独特应用,持续发光引起了极大的关注。然而,通过分子设计和材料工程来调节动态持续发光仍然是一个挑战。在这项工作中,通过调整金属胞嘧啶卤化物杂化物的激发态质子转移过程,报道了首例通过智能光学材料的反向模式实现激发依赖的持续发光的实例。这种方法能够实现超长磷光和热激活延迟荧光发射颜色的超高调控,通过调节激发波长、时间演变和温度进行调制,从而实现从绿色到蓝色或青色到黄绿色的多模式动态颜色调节。在单晶水平上,已经在有机-金属卤化物微片上构建了具有三基色转换的二维激发/空间/时间分辨光学波导,这代表了多维信息加密和光学逻辑门应用的一种新策略。