首页> 外文期刊>Advanced Functional Materials >Highly Efficient TADF OLEDs: How the Emitter-Host Interaction Controls Both the Excited State Species and Electrical Properties of the Devices to Achieve Near 100% Triplet Harvesting and High Efficiency
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Highly Efficient TADF OLEDs: How the Emitter-Host Interaction Controls Both the Excited State Species and Electrical Properties of the Devices to Achieve Near 100% Triplet Harvesting and High Efficiency

机译:高效的TADF OLED:发射极与主体之间的相互作用如何控制器件的激发态物种和电特性,以实现接近100%的三重态收成和高效率

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摘要

New emitters that can harvest both singlet and triplet excited states to give 100% internal conversion of charge into light, are required to replace Ir based phosphors in organic light emitting diodes (OLEDs). Molecules that have a charge transfer (CT) excited state can potentially achieve this through the mechanism of thermally activated delayed fluorescence (TADF). Here, it is shown that a D-A charge transfer molecule in the solid state, can emit not only via an intramolecular charge transfer (ICT) excited state, but also from exciplex states, formed between the molecule and the host material. OLEDs based on a previously studied D-A-D molecule in a host TAPC achieves >14% external electroluminescence yield and shows nearly 100% efficient triplet harvesting. In these devices, it is unambiguously established that the triplet states are harvested via TADF, but more interestingly, these results are found to be independent of whether the emitter is the ICT state or the D-A-D/host exciplex.
机译:需要新的发射器来捕获单重态和三重态激发态,以将电荷100%内部转换为光,因此需要替代有机发光二极管(OLED)中基于Ir的磷光体。具有电荷转移(CT)激发态的分子可以通过热激活延迟荧光(TADF)的机制潜在地实现这一目标。在此显示,固态的D-A电荷转移分子不仅可以通过分子内电荷转移(ICT)激发态发射,而且可以从在分子和主体材料之间形成的激基复合物态发射。基于先前在宿主TAPC中研究过的D-A-D分子的OLED,外部电致发光产率达到14%以上,并显示出近100%的三重态有效收获。在这些设备中,明确确定了通过TADF收集三重态,但更有趣的是,发现这些结果与发射器是ICT状态还是D-A-D /宿主激基复合物无关。

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  • 来源
    《Advanced Functional Materials》 |2014年第39期|6178-6186|共9页
  • 作者单位

    Physics Department, University of Durham South Road, Durham DH1 3LE, UK;

    Physics Department, University of Durham South Road, Durham DH1 3LE, UK, Faculty of Chemistry Silesian University of Technology M. Strzody 9 44-100, Gliwice, Poland;

    Physics Department, University of Durham South Road, Durham DH1 3LE, UK;

    Physics Department, University of Durham South Road, Durham DH1 3LE, UK;

    Department of Chemistry University of Durham South Road, Durham DH1 3LE, UK;

    Department of Chemistry University of Durham South Road, Durham DH1 3LE, UK;

    Physics Department, University of Durham South Road, Durham DH1 3LE, UK;

    Physics Department, University of Durham South Road, Durham DH1 3LE, UK;

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