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Efficient organic electroluminescent devices using single-layer doped polymer thin films with bipolar carrier transport abilities

机译:使用具有双极载流子传输能力的单层掺杂聚合物薄膜的高效有机电致发光器件

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摘要

Detailed studies of electroluminescent devices made from single-layer doped polymer blend thin films having bipolar carrier transport abilities are presented. The active organic layer consists of the hole-transport polymer poly(N-vinylcarbazole) (PVK) containing dispersed electron-transport molecules, as well as different fluorescent small molecules or polymers as emitting centers to vary the emission color. Both the photoluminescence and electroluminescence (EL) properties are extensively studied. In photoluminescence, very efficient transfer of energy can occur from the host to very dilute (/spl sim/1 wt.%) amounts of emitting materials. When covered with a metal layer, the intensity of photoluminescence from blend thin films was found to be dependent on the type of metal coverage. The optical and electrical properties of materials and devices were systematically studied to understand the operating mechanisms and to optimize the devices. In EL, excitons appear to be formed at doped emitting centers, rather than in the host. We show that in an optimized device, a relatively high external quantum efficiency (<1%, backside emission only) and a low operating voltage (>10 V for over 100 cd/m/sup 2/) can be easily achieved by this class of devices. It was also found air-stable Ag is as good as reactive Mg-Ag alloy for the cathode contact in devices using PVK containing dispersed electron-transport oxadiazole molecules.
机译:提出了由具有双极性载流子传输能力的单层掺杂的聚合物共混薄膜制成的电致发光器件的详细研究。活性有机层由包含分散的电子传输分子的空穴传输聚合物聚(N-乙烯基咔唑)(PVK),以及不同的荧光小分子或聚合物作为发光中心来改变发光颜色。光致发光和电致发光(EL)特性都得到了广泛的研究。在光致发光中,可以从主体发生非常有效的能量转移到非常稀(/ spl sim / 1 wt。%)数量的发光材料。当用金属层覆盖时,发现混合薄膜的光致发光强度取决于金属覆盖的类型。系统地研究了材料和设备的光学和电气特性,以了解其工作机理并优化设备。在EL中,激子似乎是在掺杂的发射中心形成的,而不是在主体中形成的。我们证明,在优化的器件中,此类可以很容易地实现相对较高的外部量子效率(<1%,仅背面发射)和较低的工作电压(> 10 V,超过100 cd / m / sup 2 /)。设备。还发现,在使用含有分散的电子传输的恶二唑分子的PVK的器件中,空气稳定的Ag与反应性Mg-Ag合金的阴极接触性能一样好。

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