Controllable construction of red thermally activated delayed fluorescence molecules based on a spiro-acridine donor

系统间交叉 有机发光二极管 发光 分子 荧光 吖啶 二面角 激发态 材料科学 辐射传输 光化学 化学 光电子学 纳米技术 原子物理学 光学 物理 图层(电子) 有机化学 氢键 单重态
作者
L Huanling,Kai Zhang,Haipei Zou,Qingfang Mu,Yuzhi Song,Lili Lin,Yuanyuan Xu,Chuan‐Kui Wang,Jianzhong Fan
出处
期刊:Physical Chemistry Chemical Physics [Royal Society of Chemistry]
卷期号:25 (2): 1032-1044 被引量:6
标识
DOI:10.1039/d2cp05084f
摘要

Red and near-infrared (NIR) thermally activated delayed fluorescence (TADF) molecules show excellent potential applications in organic light-emitting diodes (OLEDs). Due to the lack of systematic studies on the relationship between molecular structures and luminescence properties, both the species and amounts of red and NIR TADF molecules are far from meeting the requirements for practical applications. Herein, four new efficient molecules (DQCN-2spAs, TPCN-2spAs, DPCN-2spAs and BPCN-2spAs) are proposed and their photophysical properties are theoretically predicted based on first-principles calculations and thermal vibration correlation function (TVCF) theory. The results show that all molecules exhibit red or NIR emissions and they have fast radiative decay rates and reverse intersystem crossing (RISC) rates, and the excellent TADF luminescence properties are predicted. Moreover, based on spiro-acridine (spAs) as the donor unit, the combination with different acceptors can change the dihedral angle between the ground state and the excited state, the bending degree of the donor is positively correlated with the reorganization energy, and this feature can have a great influence on the non-radiative process. Furthermore, based on these theoretical predictions, experimental verifications are performed and the synthesized BPCN-2spAs is confirmed to be an efficient NIR TADF molecule. Thus, the relationships between basic molecular structures and photophysical properties are revealed, a feasible design strategy is applied and four promising red and NIR TADF molecules are proposed. All these results could contribute to the development of red and NIR TADF emitters and OLEDs.
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