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通过配位组装实现具有时间演化超长室温磷光的单相白光发射材料

Realization of Single-Phase White-Light-Emitting Materials with Time-Evolution Ultralong Room-Temperature Phosphorescence by Coordination Assemblies.

作者信息

Liu Hui, Zhang Kun, Gao Peng-Fu, Luo Jia-Hua, Jiang Yu-Ying, Zhou Meng-Shu, Li Ting, Zhu Xue-Li, Fu Hong-Ru

机构信息

College of Chemistry and Chemical Engineering, Luoyang Normal University, Luoyang 471934, P. R. China.

College of Materials and Chemical Engineering, China Three Gorges University, Yichang 443002, China.

出版信息

Inorg Chem. 2022 Jan 24;61(3):1636-1643. doi: 10.1021/acs.inorgchem.1c03461. Epub 2022 Jan 7.

Abstract

Two Cd-based supramolecular coordination polymers, [Cd(CzIP)(DMF)] () and [Cd(CzIP)(DMF)] (), were synthesized by using 5-(carbazol-9-yl) isophthalate (CzIP) as ligands. These two compounds exhibit multiple luminescence emissions; apart from fluorescence, time- and temperature-dependent ultralong phosphorescence (RTP) were also achieved under room conditions. Significantly, compound has a long-lived afterglow of 0.93 s at 545 nm under ambient conditions. Compound shows nearly pure white-light emission with CIE coordinates of (0.33, 0.33) via the dual emission of fluorescence and phosphorescence. It has come to our attention that it is the first example of a luminescent coordination polymer with single-phase white-light emission and color-evolution RTP. In addition, the long-lived RTP materials can be used in time-dependent anticounterfeiting and white-light-emitting diodes. Experimental and singlet and triplet state calculations indicate that both C-H···π interaction and inter- and intramolecular charge transfer interactions could be beneficial to the emission of ultralong RTP.

摘要

通过使用5-(咔唑-9-基)间苯二甲酸酯(CzIP)作为配体,合成了两种基于镉的超分子配位聚合物,[Cd(CzIP)(DMF)] ()和[Cd(CzIP)(DMF)] ()。这两种化合物表现出多种发光发射;除了荧光外,在室温条件下还实现了时间和温度依赖性的超长磷光(RTP)。值得注意的是,化合物 在环境条件下于545 nm处具有0.93 s的长寿命余辉。化合物 通过荧光和磷光的双重发射显示出近乎纯白光发射,其CIE坐标为(0.33, 0.33)。我们注意到,它是具有单相白光发射和颜色演变RTP的发光配位聚合物的第一个例子。此外,长寿命RTP材料可用于时间依赖性防伪和白光发光二极管。实验以及单重态和三重态计算表明,C-H···π相互作用以及分子间和分子内电荷转移相互作用都可能有利于超长RTP的发射。

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