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Achieving High Performance in AC-Field Driven Organic Light Sources

机译:在交流场驱动的有机光源中实现高性能

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摘要

Charge balance in organic light emitting structures is essential to simultaneously achieving high brightness and high efficiency. In DC-driven organic light emitting devices (OLEDs), this is relatively straight forward. However, in the newly emerging, capacitive, field-activated AC-driven organic devices, charge balance can be a challenge. In this work we introduce the concept of gating the compensation charge in AC-driven organic devices and demonstrate that this can result in exceptional increases in device performance. To do this we replace the insulator layer in a typical field-activated organic light emitting device with a nanostructured, wide band gap semiconductor layer. This layer acts as a gate between the emitter layer and the voltage contact. Time resolved device characterization shows that, at high-frequencies (over 40 kHz), the semiconductor layer allows for charge accumulation in the forward bias, light generating part of the AC cycle and charge compensation in the negative, quiescent part of the AC cycle. Such gated AC organic devices can achieve a non-output coupled luminance of 25,900 cd/m2 with power efficiencies that exceed both the insulator-based AC devices and OLEDs using the same emitters. This work clearly demonstrates that by realizing balanced management of charge, AC-driven organic light emitting devices may well be able to rival today’s OLEDs in performance.
机译:有机发光结构中的电荷平衡对于同时实现高亮度和高效率至关重要。在DC驱动的有机发光器件(OLED)中,这是相对简单的。然而,在新兴的电容性,场激活的交流驱动有机设备中,电荷平衡可能是一个挑战。在这项工作中,我们介绍了对交流驱动的有机设备中的补偿电荷进行门控的概念,并证明了这可以导致设备性能异常提高。为此,我们用纳米结构的宽带隙半导体层代替了典型的场激活有机发光器件中的绝缘层。该层用作发射极层和电压触点之间的栅极。时间分辨的器件特性表明,在高频(超过40 kHz)下,半导体层允许电荷在正向偏置中积累,在AC循环中产生光,在AC循环的负静态部分中进行电荷补偿。这样的门控AC有机器件可以实现25,900 cd / m 2 的非输出耦合亮度,其功率效率不仅超过基于绝缘体的AC器件,而且使用相同的发射器的OLED都超过了。这项工作清楚地表明,通过实现电荷的均衡管理,交流驱动的有机发光器件在性能上可能可以与当今的OLED媲美。

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