Bian Lifang, Shi Huifang, Wang Xuan, Ling Kun, Ma Huili, Li Mengping, Cheng Zhichao, Ma Chaoqun, Cai Suzhi, Wu Qi, Gan Nan, Xu Xiangfei, An Zhongfu, Huang Wei
Key Laboratory of Flexible Electronics (KLOFE) & Institute of Advanced Materials (IAM), Jiangsu National Synergistic Innovation Center for Advanced Materials (SICAM) , Nanjing Tech University (NanjingTech) , 30 South Puzhu Road , Nanjing 211800 , P. R. China.
Shanxi Institute of Flexible Electronics (SIFE) , Northwestern Polytechnical University (NPU) , 127 West Youyi Road , Xi'an 710072 , China.
J Am Chem Soc. 2018 Aug 29;140(34):10734-10739. doi: 10.1021/jacs.8b03867. Epub 2018 Aug 16.
Metal-free organic phosphorescence materials are of imperious demands in optoelectronics and bioelectronics. However, it is still a formidable challenge to develop a material with simultaneous efficiency and lifetime enhancement under ambient conditions. In this study, we design and synthesize a new class of high efficient ultralong organic phosphorescence (UOP) materials through self-assembly of melamine and aromatic acids in aqueous media. A supramolecular framework can be formed via multiple intermolecular interactions, building a rigid environment to lock the molecules firmly in a three-dimensional network, which not only effectively limits the nonradiative decay of the triplet excitons but also promotes the intersystem crossing. Thus, the supermolecules we designed synchronously achieve an ultralong emission lifetime of up to 1.91 s and a high phosphorescence quantum efficiency of 24.3% under ambient conditions. To the best of our knowledge, this is the best performance of UOP materials with simultaneous efficiency and lifetime enhancement. Furthermore, it is successfully applied in a barcode identification in darkness. This result not only paves the way toward high efficient UOP materials but also expands their applications.
无金属有机磷光材料在光电子学和生物电子学领域有着迫切需求。然而,在环境条件下开发一种同时提高效率和延长寿命的材料仍然是一项艰巨的挑战。在本研究中,我们通过三聚氰胺和芳香酸在水介质中的自组装设计并合成了一类新型高效超长有机磷光(UOP)材料。通过多种分子间相互作用可以形成一个超分子框架,构建一个刚性环境将分子牢固地锁定在三维网络中,这不仅有效地限制了三重态激子的非辐射衰变,还促进了系间窜越。因此,我们设计的超分子在环境条件下同步实现了高达1.91 s的超长发射寿命和24.3%的高磷光量子效率。据我们所知,这是同时提高效率和延长寿命的UOP材料的最佳性能。此外,它成功应用于黑暗中的条形码识别。这一结果不仅为高效UOP材料铺平了道路,还拓展了它们的应用。