顶发射有机发光二极管中表面等离子体激元的修饰增强了光的脱耦性

Cornelius Fuchs, Tobias Schwab, Martin Wieczorek, M. Gather, S. Hofmann, K. Leo, R. Scholz
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引用次数: 3

摘要

本文报道了单色顶发射有机发光二极管(OLEDs)的光脱耦效率。这些oled采用了一种空穴传输层(HTL)材料,其折射率(~ 1.5)大大低于基准器件的发射极材料或标准HTL材料(~ 1.8)。这种低指数的HTL位于不透明的底部金属触点(阳极)和主动发射层之间。与具有相同折射率的HTL相比,不透明金属接触的表面等离子体激元(SPP)模式色散关系向更小的面内波数偏移。这种位移提高了解耦效率,因为它降低了发射极的总耗散功率。此外,通过使用超薄的顶部电极,避免了在透明金属顶部触点(阴极)处耦合spp的激发。因此,相对于发射体材料,从发射体分子到所有非辐射倏逝模式的电致发光的耦合至少减少了两倍,另外增加了解耦效率。此外,对于足够高的折射率对比,阳极/有机界面处SPP的位移会导致面内波数小于有机发射层内的波数,并且通过高折射率光提取结构(例如微透镜)将所有激发模式解耦似乎是可行的。根据光学模拟,与参考样品相比,具有低折射率HTL的单色绿色发光oled的外量子效率提高了约20%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Surface plasmon polariton modification in top-emitting organic light-emitting diodes for enhanced light outcoupling
We report on the enhanced light outcoupling efficiency of monochrome top-emitting organic light-emitting diodes (OLEDs). These OLEDs incorporate a hole transport layer (HTL) material with a substantially lower refractive index (∼ 1.5) than the emitter material or the standard HTL material (∼ 1.8) of a reference device. This low-index HTL is situated between the opaque bottom metal contact (anode) and the active emission layer. Compared to an HTL with common refractive index, the dispersion relation of the surface plasmon polariton (SPP) mode from the opaque metal contact is shifted to smaller in-plane wavenumbers. This shift enhances the outcoupling efficiency as it reduces the total dissipated power of the emitter. Furthermore, the excitation of the coupled SPPs at the thin transparent metal top contact (cathode) is avoided by using an ultrathin top electrode. Hence, the coupling of the electroluminescence from the emitter molecules to all non-radiative evanescent modes, with respect to the emitter material, is reduced by at least a factor of two, additionally increasing the outcoupling efficiency. Furthermore, for sufficiently high refractive index contrast the shift of the SPP at the anode/organic interface can lead to in-plane wavenumbers smaller than the wavenumber within the organic emitter layer and outcoupling of all excited modes by high index light extraction structures, e.g. microlens, seems feasible. In accordance to optical simulations, the external quantum efficiency is enhanced by about 20 % for monochrome green emitting OLEDs with low refractive index HTL compared to a reference sample.
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