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通过寿命实验的动力学蒙特卡罗模拟识别OLED退化情形

Identification of OLED Degradation Scenarios by Kinetic Monte Carlo Simulations of Lifetime Experiments.

作者信息

Hauenstein Christoph, Gottardi Stefano, Torun Engin, Coehoorn Reinder, van Eersel Harm

机构信息

Simbeyond B.V., Eindhoven, Netherlands.

Department of Applied Physics, Eindhoven University of Technology, Eindhoven, Netherlands.

出版信息

Front Chem. 2022 Jan 27;9:823210. doi: 10.3389/fchem.2021.823210. eCollection 2021.

Abstract

We show how three-dimensions kinetic Monte Carlo simulations can be used to carry out an operational lifetime study of thermally activated delayed fluorescence (TADF) organic light-emitting diodes (OLEDs) and to deduce the sensitivity to various degradation scenarios. The approach is demonstrated for an experimentally well-characterized efficient green-emitting device. The simulation workflow includes an equilibration phase, an equilibrated pristine state phase and a degradation phase. Acceleration of the simulations by extrapolation from simulations at large current densities makes the simulation time realistically feasible. Such a procedure is also often followed in experimental studies. Degradation is assumed to be triggered by exciton-polaron quenching and exciton-exciton annihilation processes. A comparison of the simulated and experimental time-dependence of the luminance decay provides the probability that a degradation-triggering event leads to the formation of a degraded molecule. For the TADF OLED that has been studied, this parameter is only weakly dependent on the assumed scenario, provided that the degraded molecules are assumed to form trap sites, and is found to be . The approach is expected to enable systematic in silico studies of the operational lifetime and its sensitivity to the material composition, layer structure, charge carrier balance, and the use of refined device principles such as hyperfluorescence.

摘要

我们展示了如何使用三维动力学蒙特卡罗模拟来开展热激活延迟荧光(TADF)有机发光二极管(OLED)的工作寿命研究,并推断其对各种退化情形的敏感性。该方法通过一个实验上表征良好的高效绿色发光器件得以证明。模拟工作流程包括一个平衡阶段、一个平衡的原始状态阶段和一个退化阶段。通过从大电流密度下的模拟进行外推来加速模拟,使得模拟时间切实可行。这样的程序在实验研究中也经常遵循。假设退化是由激子 - 极化子猝灭和激子 - 激子湮灭过程引发的。模拟和实验得到的亮度衰减随时间变化的比较给出了一个退化触发事件导致形成退化分子的概率。对于所研究的TADF OLED,只要假设退化分子形成陷阱位点,该参数仅微弱依赖于所假设的情形,并且发现其为 。预计该方法能够对工作寿命及其对材料组成、层结构、电荷载流子平衡以及诸如超荧光等精细器件原理的使用的敏感性进行系统的计算机模拟研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e5d6/8828587/515157bb1ec7/fchem-09-823210-g001.jpg

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