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Nano-particle based scattering layers for optical efficiency enhancement of organic light-emitting diodes and organic solar cells

机译:基于纳米粒子的散射层,用于增强有机发光二极管和有机太阳能电池的光学效率

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摘要

The performance of both organic light-emitting diodes (OLEDs) and organic solar cells (OSC) depends on efficient coupling between optical far field modes and the emimtting/absorbing region of the device. Current approaches towards OLEDs with efficient light-extraction often are limited to single-color eMISsion or require expensive, non-standard substrates or top-down structuring, which reduces compatibility with large-area light sources. Here, we report on integrating solution-processed nano-particle based light-scattering films close to the active region of organic semiconductor devices. In OLEDs, these films efficiently extract light that would otherwise remain trapped in the device. Without additional external outcoupling structures, translucent white OLEDs containing these scattering films achieve luminous efficacies of 46lm W~(-1) and external quantum efficiencies of 33% (both at 1000 cd m~(-2)). These are by far the highest numbers ever reported for translucent white OLEDs and the best values in the open literature for any white device on a conventional substrate. By applying additional light-extraction structures, 62lm W~(-1) and 46% EQE are reached. Besides universally enhancing light-extraction in various OLED configurations, including flexible, translucent, single-color, and white OLEDs, the nano-particle scattering film boosts the short-circuit current density in translucent organic solar cells by up to 70%.
机译:有机发光二极管(OLED)和有机太阳能电池(OSC)的性能都取决于光学远场模式与器件的入射/吸收区域之间的有效耦合。当前具有有效光提取的OLED方法通常仅限于单色发射或需要昂贵的非标准基板或自上而下的结构化,这降低了与大面积光源的兼容性。在这里,我们报道了在有机半导体器件的有源区附近集成溶液处理的基于纳米粒子的光散射膜。在OLED中,这些膜可有效地提取否则将保留在设备中的光。在没有其他外部耦合结构的情况下,包含这些散射膜的半透明白色OLED的发光效率达到46lm W〜(-1),外部量子效率达到33%(均为1000 cd m〜(-2))。这些是迄今为止报道的半透明白色OLED的最高数量,并且是公开文献中常规基板上任何白色器件的最佳值。通过采用附加的光提取结构,可以达到62lm W〜(-1)和46%的EQE。除了在各种OLED配置(包括柔性,半透明,单色和白色OLED)中普遍增强光提取功能之外,纳米粒子散射膜还可以将半透明有机太阳能电池中的短路电流密度提高多达70%。

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  • 来源
    《Journal of Applied Physics》 |2013年第20期|204502.1-204502.8|共8页
  • 作者单位

    Institut fuer Angewandte Photophysik, Technische Universitaet Dresden, George-Baehr-Strasse 1, 01062 Dresden, Germany,Graduate Institute of Electronics Engineering, Graduate Institute of Photonics and Optoelectronics, and Department of Electrical Engineering, National Taiwan University Taipei 106, Taiwan;

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

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

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

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

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

    Graduate Institute of Electronics Engineering, Graduate Institute of Photonics and Optoelectronics, and Department of Electrical Engineering, National Taiwan University Taipei 106, Taiwan;

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

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

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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