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Improved stability in organic light-emitting devices by mixing ambipolar and wide energy gap hosts

机译:通过混合双极性和宽能隙主体提高有机发光器件的稳定性

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We demonstrate improved stability in phosphorescent organic light-emitting devices (OLEDs) by incorporating a wide energy gap host material into an ambipolar emissive layer. Unlike conventional mixed-host OLEDs that combine hole- and electron-transporting hosts, charge transport in this device occurs primarily along the ambipolar host and the emitter, while the wide energy gap host serves to modify the charge injection and transport characteristics of the emissive layer. This approach allows both the width and position of the exciton recombination zone to be tuned without introducing exciplex states. Whereas overall device stability improves with increasing recombination zone width in conventional mixed-host OLEDs, mixing in this system reduces the recombination zone extent yet still increases device lifetime. By decoupling luminance losses into the photostability of the emitter and the exciton formation efficiency, we show that this enhancement arises from a trade-off between bulk and interfacial degradation. The addition of the wide energy gap host moves the recombination zone away from the interface between the hole-transport layer and the emissive layer, sacrificing a modest increase in bulk degradation to substantially reduce interfacial degradation. We find that the lifetime can be improved by 50% by balancing these competing degradation pathways.
机译:通过在双极性发光层中引入宽能隙主体材料,我们证明了磷光有机发光器件(OLED)的稳定性得到了改善。与结合空穴和电子传输主体的常规混合主体OLED不同,该器件中的电荷传输主要发生在双极性主体和发射极上,而宽能隙主体用于修改发射层的电荷注入和传输特性。这种方法允许在不引入激基复合物状态的情况下调节激子复合区的宽度和位置。尽管在常规的混合主体OLED中,随着重新组合区域宽度的增加,整个设备的稳定性得以改善,但在该系统中进行混合可以降低重新组合区域的程度,但仍可以延长设备的使用寿命。通过将亮度损失分解为发射体的光稳定性和激子形成效率,我们表明,这种增强来自体积与界面降解之间的权衡。宽能隙主体的添加使复合区远离空穴传输层和发射层之间的界面,从而牺牲了体积退化的适度增加,从而大大减少了界面退化。我们发现,通过平衡这些竞争性的降解途径,寿命可以提高50%。

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