磷光
余辉
无定形固体
掺杂剂
材料科学
量子产额
兴奋剂
光化学
蒸发
发光
溶剂
光致发光
产量(工程)
烷基
持续发光
有机发光二极管
基质(化学分析)
化学工程
纳米技术
超分子化学
化学物理
高能材料
作者
Linlin Wang,C. Chen,Xinyang Ye,Wenbo Dai,Jing Xiong,Miaochang Liu,Huayue Wu,Xiaobo Huang,Kezhan Zhang,Yunxiang Lei
摘要
Organic room-temperature phosphorescence (RTP) materials have attracted considerable attention due to their ultralong afterglow lifetimes and significant Stokes shift. However, most reported systems exhibit single-mode emission, operating either in crystalline forms (typically small-molecule matrices) or in amorphous states (often polymer-based). Herein, we employ 1,2,3,4-butanetetracarboxylic acid (BTA) as the host matrix and construct a series of doped materials by incorporating nine benzofuran[2,3-c]pyridine derivatives as guest dopants through supramolecular self-assembly. By tuning the solvent evaporation rate, the materials can be prepared as either ordered, tightly packed crystals or disordered amorphous (glassy) materials. Enabled by the combined effects of the flexible alkyl chains and abundant hydrogen-bonding sites in the BTA host, these doped materials overcome the conventional morphology constraints and exhibit excellent dual-morphology (crystalline/glassy) RTP. The phosphorescence quantum yield reaches > 60%, and the afterglow remains stable even up to 460 K. To the best of our knowledge, this is the first doped RTP system that exhibits dual-morphology emission.
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