论文标题

多分子激发态振动耦合的光谱分析

Spectroscopic analysis of vibrational coupling in multi-molecular excited states

论文作者

Hammer, Sebastian, Linderl, Theresa, Tvingstedt, Kristofer, Brütting, Wolfgang, Pflaum, Jens

论文摘要

多分子激发态伴随着具有分子内和分子间的几何弛豫,通常在光学和电流研究以及有机半导体的应用中遇到,例如准分子或电荷转移态。了解这些状态的动力学对于改善有机设备,例如发光二极管和太阳能电池至关重要。然而,它们的完整显微镜描述要求需要复杂的工具,例如Ab-Initio量子化学计算,这些计算以高计算成本的费用,并且很容易通过假设和迭代算法程序来犯错误。因此,光谱数据的分析通常仅在现象学水平上进行。在这里,我们提出了一个工具包,以分析依赖温度的发光数据并获得对当前分子系统相关显微镜参数的首次见解。通过基于弗兰克 - 康登的方法,考虑了单一有效的分子间振动模式以及对地面和激发态的不同电位,我们能够解释这种多分子状态的发光光谱。我们证明,通过应用一定合理的简化,可以令人满意地复制电荷传递状态的发光以及准分子的发光,以供从低温到高于室温的温度下进行。 We present a semi-classical and a quantum-mechanical description of our model and, for both cases, demonstrate its applicability by analyzing the temperature depended luminescence of the amorphous donor-acceptor heterojunction tetraphenyldibenzoperiflanthene:C$_{60}$ as well as polycrystalline zinc-phthalocyanine to reproduce the luminescence spectra and extract相关的系统参数,例如准分子结合能。

Multi-molecular excited states accompanied by an intra- and inter-molecular geometric relaxation are commonly encountered in optical and electrooptical studies and applications of organic semiconductors as, for example excimers or charge transfer states. Understanding the dynamics of these states is crucial to improve organic devices such as light emitting diodes and solar cells. Their full microscopic description, however, demands for sophisticated tools such as ab-initio quantum chemical calculations which come at the expenses of high computational costs and are prone to errors by assumptions as well as iterative algorithmic procedures. Hence, the analysis of spectroscopic data is often conducted on a phenomenological level only. Here, we present a toolkit to analyze temperature dependent luminescence data and gain first insights into the relevant microscopic parameters of the molecular system at hand. By means of a Franck-Condon based approach considering a single effective inter-molecular vibrational mode and different potentials for the ground and excited state we are able to explain the luminescence spectra of such multi-molecular states. We demonstrate that by applying certain reasonable simplifications the luminescence of charge transfer states as well as excimers can be satisfactorily reproduced for temperatures ranging from cryogenics to above room temperature. We present a semi-classical and a quantum-mechanical description of our model and, for both cases, demonstrate its applicability by analyzing the temperature depended luminescence of the amorphous donor-acceptor heterojunction tetraphenyldibenzoperiflanthene:C$_{60}$ as well as polycrystalline zinc-phthalocyanine to reproduce the luminescence spectra and extract relevant system parameters such as the excimer binding energy.

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