首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Superb lifetime of blue organic light-emitting diodes through engineering interface carrier blocking layers and adjusting electron leakage and an unusual efficiency variation at low electric field
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Superb lifetime of blue organic light-emitting diodes through engineering interface carrier blocking layers and adjusting electron leakage and an unusual efficiency variation at low electric field

机译:通过工程界面载体阻挡层和调节电子泄漏和低电场的异常效率变化的卓越的蓝色有机发光二极管

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摘要

An extremely long lifetime blue organic light-emitting diode (OLED) was developed through managing the electron density and an S-shaped variation of efficiency in blue fluorescent organic light-emitting diodes (FOLEDs) using carrier blocking layers and systematically analyzed in conjunction with the efficiency-lifetime interrelationship. Firstly, with a sensing layer, the majority carriers in the emitting layer were identified as a function of applied voltage and found to be electrons in our FOLEDs. In our reference device, both hole and electron leakage currents are present. To analyze the influence of leakage current on the efficiency variation and lifetime in our devices, two different classes of hole blocking layers were inserted between the emitting layer and the electron transport layer. By managing electron injection into the emitting layer, we successfully and simultaneously controlled the S-shape feature in efficiency and improved the operational stability, which resulted in a state of the art blue lifetime of 300 h at 500 cd m(-2) up to 97% of the initial luminance. The lifetime of the blue FOLEDs was extended by more than 5 times by introducing an electron-leakage suppressing carrier blocking material at the interface between charge transport layers and emitting layers.
机译:通过管理电子密度和使用载体阻塞层的蓝色荧光有机发光二极管(FOLEDS)中的效率的S形变化来开发极长的寿命蓝色有机发光二极管(OLED)。效率 - 寿命相互关系。首先,利用感测层,发光层中的多个载流子被鉴定为施加电压的函数,并且发现在我们的叶片中是电子。在我们的参考装置中,存在孔和电子漏电流。为了分析漏电流对我们器件中效率变化和寿命的影响,在发光层和电子传输层之间插入了两种不同的空穴阻挡层。通过管理电子注入到发光层中,我们成功地控制了S形特征,并提高了操作稳定性,从而导致了500℃(-2)的艺术蓝色寿命的最新状态初始亮度的97%。通过在电荷输送层和发光层之间的界面处引入电泄漏抑制载体阻挡材料,蓝色叶片的寿命延伸超过5次。

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