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有机发光器件电子转移降解建模

Modeling Electron-Transfer Degradation of Organic Light-Emitting Devices.

作者信息

Moon Yu Kyung, Jang Ho Jin, Hwang Sanju, Kang Seongsoo, Kim Sinheui, Oh Juwon, Lee Sangheon, Kim Dongho, Lee Jun Yeob, You Youngmin

机构信息

Division of Chemical Engineering and Materials Science, and System, Health and Engineering Convergence Major, Ewha Womans University, Seoul, 03760, Republic of Korea.

School of Chemical Engineering, Sungkyunkwan University, Suwon, 16419, Republic of Korea.

出版信息

Adv Mater. 2021 Mar;33(12):e2003832. doi: 10.1002/adma.202003832. Epub 2021 Feb 15.

Abstract

The operational lifetime of organic light-emitting devices (OLEDs) is governed primarily by the intrinsic degradation of the materials. Therefore, a chemical model capable of predicting the operational stability is highly important. Here, a degradation model for OLEDs that exhibit thermally activated delayed fluorescence (TADF) is constructed and validated. The degradation model involves Langevin recombination of charge carriers on hosts, followed by the generation of a polaron pair through reductive electron transfer from a dopant to a host exciton as the initiation steps. The polarons undergo spontaneous decomposition, which competes with ultrafast recovery of the intact materials through charge recombination. Electrical and spectroscopic investigations provide information about the kinetics of each step in the operation and degradation of the devices, thereby enabling the building of mass balances for the key species in the emitting layers. Numerical solutions enable predictions of temporal decreases of the dopant concentration in various TADF emitting layers. The simulation results are in good agreement with experimental operational stabilities. This research disentangles the chemical processes in intrinsic electron-transfer degradation, and provides a useful foundation for improving the longevity of OLEDs.

摘要

有机发光器件(OLED)的工作寿命主要由材料的固有降解决定。因此,能够预测其工作稳定性的化学模型非常重要。在此,构建并验证了一种适用于表现出热激活延迟荧光(TADF)的OLED的降解模型。该降解模型包括主体上电荷载流子的朗之万复合,随后通过从掺杂剂到主体激子的还原电子转移产生极化子对作为起始步骤。极化子会自发分解,这与通过电荷复合使完整材料超快恢复的过程相互竞争。电学和光谱学研究提供了有关器件工作和降解过程中各步骤动力学的信息,从而能够建立发光层中关键物种的质量平衡。数值解能够预测各种TADF发光层中掺杂剂浓度随时间的降低情况。模拟结果与实验测得的工作稳定性良好吻合。这项研究理清了固有电子转移降解中的化学过程,并为提高OLED的寿命提供了有用的基础。

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