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Energetics of conjugated polymer and electrode interfaces in light emitting diode .

机译:发光二极管中共轭聚合物与电极界面的能级。

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摘要

Recently, polymers have emerged as strong candidates for various semiconductor device applications. The physical and electrical properties of these polymer semiconductors are drastically different from those of inorganic semiconductors, and a solid understanding of these properties is necessary in order to further develop polymer electronics. This work concentrates on polymers for light emitting diode (LED) devices, which is the most promising application in polymer electronics. Understanding and control of charge injection from anode/cathode to active (light emitting) layer are crucial for high efficiency LED. To understand the charge injection efficiency, the energy band alignment and their impact on charge injection at polymer-electrode interfaces are investigated with a range of electron spectroscopies and electrical measurements.; First, electronic structure of the best known hole injecting polymer (i.e., anode), poly(3,4-ethylene-dioxythiophene) -- poly(styrene-sulfonate) (PEDOT-PSS) is studied. We investigate the unique shell -- like structure of the PEDOT-PSS and its impact on the electrical properties. The role of PSS surface layer in enhancing the hole injection efficiency into the active layer is discussed.; The electronic structures of two light emitting conjugated polymers, poly(9,9'-dioctylfluorene) (F8, also known as PFO) and poly(9,9'-dioctylfluorene- co-bis-N,N'-(4-butylphenyl) diphenylamine) (TFB), are also studied by various methods. The alignment of the energy levels at the anode and the cathode interfaces is investigated in detail. Different mechanisms seem to apply for the energy level alignment at the anode and the cathode. We discuss the difference in the light of different degrees of contamination at the interface which results from different processing conditions.; Finally, a modification of energetics of polymer-anode interface by doping is discussed. We propose a co-solution doping method suitable for solution processed polymer material. The polymer showed similar behavior to small molecular semiconductor upon doping. It is shown that doping induces the energy level shift and enhances the carrier injection.
机译:近来,聚合物已成为各种半导体器件应用的强候选者。这些聚合物半导体的物理和电学性质与无机半导体完全不同,为了进一步发展聚合物电子学,必须对这些性质有扎实的了解。这项工作集中于发光二极管(LED)器件的聚合物,这是聚合物电子学中最有希望的应用。了解和控制从阳极/阴极到有源(发光)层的电荷注入对于高效LED至关重要。为了理解电荷注入效率,通过一系列电子光谱学和电学测量研究了能带对准及其对聚合物-电极界面处电荷注入的影响。首先,研究了最著名的空穴注入聚合物(即阳极),聚(3,4-乙烯-二氧噻吩)-聚(苯乙烯磺酸盐)(PEDOT-PSS)的电子结构。我们研究了独特的外壳-像PEDOT-PSS的结构及其对电性能的影响。讨论了PSS表面层在增强向有源层中的空穴注入效率方面的作用。两种发光共轭聚合物的电子结构,聚(9,9'-二辛基芴)(F8,也称为PFO)和聚(9,9'-二辛基芴-共-双-N,N'-(4-丁基苯基) )二苯胺)(TFB),也通过各种方法进行了研究。详细研究了阳极和阴极界面的能级对齐。似乎不同的机制适用于阳极和阴极的能级对准。我们讨论了由于不同的加工条件导致的界面处不同程度的污染的差异。最后,讨论了通过掺杂改性聚合物-阳极界面的能量。我们提出一种适用于溶液处理的聚合物材料的共溶液掺杂方法。掺杂后,聚合物表现出与小分子半导体相似的行为。结果表明,掺杂会引起能级移动并增强载流子注入。

著录项

  • 作者

    Hwang, Jaehyung.;

  • 作者单位

    Princeton University.;

  • 授予单位 Princeton University.;
  • 学科 Engineering Electronics and Electrical.; Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 209 p.
  • 总页数 209
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;工程材料学;
  • 关键词

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