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Improving the performance of doped π-conjugated polymers for use in organic light-emitting diodes

机译:改善用于有机发光二极管的掺杂π共轭聚合物的性能

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Organic light-emitting diodes (OLEDs) represent a promising technology for large, flexible, lightweight, flat-panel displays. Such devices consist of one or several semiconducting organic layer(s) sandwiched between two electrodes. When an electric field is applied, electrons are injected by the cathode into the lowest unoccupied molecular orbital of the adjacent molecules (simultaneously, holes are injected by the anode into the highest occupied molecular orbital). The two types of carriers migrate towards each other and a fraction of them recombine to form excitons, some of which decay radiatively to the ground state by spontaneous emission. Doped π-conjugated polymer layers improve the injection of holes in OLED devices; this is thought to result from the more favourable work function of these injection layers compared with the more commonly used layer material (indium tin oxide). Here we demonstrate that by increasing the doping level of such polymers, the barrier to hole injection can be continuously reduced. The use of combinatorial devices allows us to quickly screen for the optimum doping level. We apply this concept in OLED devices with hole-limited electroluminescence (such as polyfluorene-based systems), finding that it is possible to significantly reduce the operating voltage while improving the light output and efficiency.
机译:有机发光二极管(OLED)代表了一种用于大型,灵活,轻巧的平板显示器的有前途的技术。这种装置由夹在两个电极之间的一个或几个半导体有机层组成。当施加电场时,电子被阴极注入到相邻分子的最低未占据分子轨道中(同时,空穴被阳极注入到被占据最高的分子轨道中)。两种类型的载流子互相迁移,其中一部分重组形成激子,其中一些通过自发辐射辐射衰减至基态。掺杂的π共轭聚合物层可改善OLED器件中的空穴注入。认为这是由于与更常用的层材料(氧化铟锡)相比,这些注入层的功函数更有利。在这里,我们证明了通过增加这种聚合物的掺杂水平,可以连续降低空穴注入的势垒。组合设备的使用使我们能够快速筛查最佳掺杂水平。我们将此概念应用于具有空穴受限电致发光的OLED器件(例如基于聚芴的系统),发现可以在显着降低工作电压的同时提高光输出和效率。

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