有机电荧光材料激发态特性的设计与调制

Shitong Zhang, Yu Gao, Haichao Liu, Bing Yang, Yuguang Ma
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引用次数: 1

摘要

激发态对有机发光材料的光致发光(PL)和电致发光(EL)性能起着重要作用。在荧光有机发光二极管(FOLEDs)中,电荷转移(CT)状态有利于通过有效的反向系统间交叉获得三重态激子的利用。然而,ct主导的发射状态严重降低了这种材料的PL效率。我们的策略是将局域激发(LE)态和CT态结合为杂化局域和电荷转移(HLCT)态,以达到高PL效率和高激子利用率之间的平衡。作为解决方案,在TBPMCN中获得了准等效杂化,其非掺杂OLED表现出非常高的性能:纯蓝色发光,CIE (0.156, 0.159), EQE高达7.8%,激子利用率高达97%,无延迟成分。此外,利用时变密度泛函理论(TDDFT)系统地研究了供体-受体(D-A)系统的激发态特性。LE态和CT态之间的杂化和去杂化过程与供体和受体之间的距离增加有关。此外,hct的状态组成可以通过D-A强度、联动等进行精细调节。利用HLCT概念,我们实现了高效的蓝、绿、红甚至近红外发光材料及其FOLED器件。综上所述,激发态调制可以成为设计低成本、高效率的FOLED材料的一种实用方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design and Modulation on the Excited State Properties in Organic Electrofluorescence Materials
Excited state plays an important role in photoluminescence (PL) and electroluminescence (EL) properties of organic light-emitting materials. Charge-transfer (CT) state is beneficial to harvest triplet exciton utilization in fluorescent organic light-emitting diodes (FOLEDs) by efficient reverse intersystem crossing. However, the CT-dominated emissive state seriously decreases PL efficiency in such materials. Our strategy is to combine both locally-excited (LE) state and CT state into hybridized local and charge-transfer (HLCT) state, aiming at a balance between high PL efficiency and high exciton utilization. As a solution, a quasi-equivalent hybridization is obtained in TBPMCN, and its nondoped OLED exhibited a very high performance: a pure blue emission with a CIE (0.156, 0.159), a high EQE of 7.8% and a high exciton utilization of 97% without delayed component. Furthermore, the excited state properties were systematically investigated in donor-acceptor (D-A) system using time-dependent density functional theory (TDDFT). The hybridization and de-hybridization processes between LE and CT states were involved with an increasing distance between donor and acceptor. What is more, HLCT state composition can be finely modulated by D-A strength, linkage, etc. Using HLCT conception, we achieved high-efficiency blue, green, red and even NIR luminescent materials and their FOLED devices. In a word, the excited state modulation could be a practical method in designing low-cost, high-efficiency FOLED materials.
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