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Molecular-scale simulation of electroluminescence in a multilayer white organic light-emitting diode

机译:多层白色有机发光二极管中电致发光的分子尺度模拟

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摘要

In multilayer white organic light-emitting diodes the electronic processes in the various layers-injection and motion of charges as well as generation, diffusion and radiative decay of excitons-should be concerted such that efficient, stable and colour-balanced electroluminescence can occur. Here we show that it is feasible to carry out Monte Carlo simulations including all of these molecular-scale processes for a hybrid multilayer organic light-emitting diode combining red and green phosphorescent layers with a blue fluorescent layer. The simulated current density and emission profile are shown to agree well with experiment. The experimental emission profile was obtained with nanometre resolution from the measured angle-and polarization-dependent emission spectra. The simulations elucidate the crucial role of exciton transfer from green to red and the efficiency loss due to excitons generated in the interlayer between the green and blue layers. The perpendicular and lateral confinement of the exciton generation to regions of molecular-scale dimensions revealed by this study demonstrate the necessity of molecular-scale instead of conventional continuum simulation.
机译:在多层白色有机发光二极管中,应协调各层中的电子过程-电荷的注入和运动,以及激子的产生,扩散和辐射衰减,以便可以发生有效,稳定和颜色平衡的电致发光。在这里,我们表明对包含红色和绿色磷光层与蓝色荧光层的混合多层有机发光二极管进行包括所有这些分子尺度过程的蒙特卡洛模拟是可行的。模拟电流密度和发射曲线表明与实验吻合良好。从测得的角度和偏振相关的发射光谱中,以纳米分辨率获得了实验发射曲线。这些模拟阐明了激子从绿色到红色的转移的关键作用,以及由于在绿色和蓝色层之间的中间层中产生的激子而导致的效率损失。这项研究揭示了激子生成在分子尺度尺寸区域的垂直和横向限制,这证明了分子尺度替代常规连续谱模拟的必要性。

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  • 来源
    《Nature Materials》 |2013年第7期|652-658|共7页
  • 作者单位

    Department of Applied Physics, Technische Universiteit Eindhoven, PO Box 513, NL-5600 MB Eindhoven, The Netherlands;

    Department of Applied Physics, Technische Universiteit Eindhoven, PO Box 513, NL-5600 MB Eindhoven, The Netherlands,Philips Research Laboratories, High Tech Campus 4, NL-5656 AE Eindhoven, The Netherlands,Dutch Polymer Institute, PO Box 902, NL-5600 AX Eindhoven, The Netherlands;

    Department of Applied Physics, Technische Universiteit Eindhoven, PO Box 513, NL-5600 MB Eindhoven, The Netherlands,Philips Research Laboratories, High Tech Campus 4, NL-5656 AE Eindhoven, The Netherlands,Dutch Polymer Institute, PO Box 902, NL-5600 AX Eindhoven, The Netherlands;

    Department of Applied Physics, Technische Universiteit Eindhoven, PO Box 513, NL-5600 MB Eindhoven, The Netherlands,Philips Research Laboratories, High Tech Campus 4, NL-5656 AE Eindhoven, The Netherlands;

    Department of Applied Physics, Technische Universiteit Eindhoven, PO Box 513, NL-5600 MB Eindhoven, The Netherlands;

    lnstitut fuer Angewandte Photophysik, Technische Universitaet Dresden, George-Baehr-Strasse 1, D-01062 Dresden, Germany;

    lnstitut fuer Angewandte Photophysik, Technische Universitaet Dresden, George-Baehr-Strasse 1, D-01062 Dresden, Germany;

    lnstitut fuer Angewandte Photophysik, Technische Universitaet Dresden, George-Baehr-Strasse 1, D-01062 Dresden, Germany;

    lnstitut fuer Angewandte Photophysik, Technische Universitaet Dresden, George-Baehr-Strasse 1, D-01062 Dresden, Germany;

    Philips Research Aachen, Weisshausstrasse 2, D-52066 Aachen, Germany;

    Department of Applied Physics, Technische Universiteit Eindhoven, PO Box 513, NL-5600 MB Eindhoven, The Netherlands,Philips Research Laboratories, High Tech Campus 4, NL-5656 AE Eindhoven, The Netherlands;

    Department of Applied Physics, Technische Universiteit Eindhoven, PO Box 513, NL-5600 MB Eindhoven, The Netherlands;

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