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AC field-induced polymer electroluminescence with single wall carbon nanotubes

机译:交流电场诱导的单壁碳纳米管聚合物电致发光

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摘要

We developed a high-performance field-induced polymer electroluminescence (FPEL) device consisting of four stacked layers: a top metal electrode/thin solution-processed nanocomposite film of single wall carbon nanotubes (SWNTs) and a fluorescent polymer/insulator/transparent bottom electrode working under an alternating current (AC) electric field. A small amount of SWNTs that were highly dispersed in the fluorescent polymer matrix by a conjugate block copolymer dispersant significantly enhanced EL, and we were able to realize an SWNT-FPEL device with a light emission of approximately 350 cd/m~2 at an applied voltage of ±25 V and an AC frequency of 300 kHz. The brightness of the SWNT-FPEL device is much greater than those of other AC-based organic or even inorganic ELs that generally require at least a few hundred volts. Light is emitted from our SWNT-FPEL device because of the sequential injection of field-induced holes and then electron carriers through ambipolar carbon nanotubes under an AC field, followed by exciton formation in the conjugated organic layer. Field-induced bipolar charge injection provides great material design freedom for our devices; the energy level does not have to be aligned between the electrode and the emission layer, and the balance of the carrier injected and transported can be altered in contrast to that in conventional organic light-emitting diodes, leading to an extremely cost-effective and unified device architecture that is applicable to all red-green-blue fluorescent polymers.
机译:我们开发了由四个堆叠层组成的高性能场致聚合物电致发光(FPEL)器件:单壁碳纳米管(SWNT)的顶部金属电极/稀溶液处理的纳米复合膜和荧光聚合物/绝缘体/透明底部电极在交流(AC)电场下工作。少量的通过共轭嵌段共聚物分散剂高度分散在荧光聚合物基质中的SWNTs显着增强了EL,我们能够实现在应用时发光约350 cd / m〜2的SWNT-FPEL器件。电压为±25 V,交流频率为300 kHz。 SWNT-FPEL器件的亮度比通常需要至少几百伏的其他基于AC的有机或什至无机EL的亮度高得多。我们的SWNT-FPEL器件发出的光是由于在电场下依次注入场致空穴,然后电子通过双极性碳纳米管注入电子,然后在共轭有机层中形成激子。场感应双极电荷注入为我们的设备提供了极大的材料设计自由度;与传统的有机发光二极管相比,电极和发射层之间的能量水平不必对齐,并且可以改变注入和传输的载流子的平衡,从而实现了极高的成本效益和统一性适用于所有红绿蓝荧光聚合物的设备架构。

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