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Self-Assembly and Charge Transport of a Conjugated Polymer on ITO Substrates

机译:ITO基板上共轭聚合物的自组装和电荷传输

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Conjugated oligomers and polymers are very attractive for potential future plastic electronic and opto-electronic device applications such as plastic photo detectors and solar cells, field effect transistors, and light emitting diodes. There are many desirable properties of conjugated polymers for opto-electronic devices such as flexibility and tenability, as well as their conductive property. Understanding and optimizing charge transport between an active polymer layer and conductive substrate is critical to the optimization of opto-electronic devices. This study focused on the design, synthesis, self-assembly, and electron transfers of conjugated polymers that are covalently attached to a conductive or semi-conductive substrate. Specifically, a phosphonic acid end-functionalized polyphenylenevinylene (PPV) was developed and self-assembled onto an Indium Tin Oxide (ITO) substrate. This study demonstrated how atomic force microscopy (AFM) can be an effective characterization technique in conjunction with conventional electron transfer rate study methods, including cyclic voltammetry (CV), towards determining electron transfer rate in polymer and polymer/ conductor interface systems. This study found that the electron transfer rates of covalently attached and self-assembled films were much faster than the spin coated films. The knowledge from this study can be very useful for designing potential polymer based electronic and opto-electronic thin film devices.
机译:共轭低聚物和聚合物对于未来潜在的塑料电子和光电设备应用(例如塑料光电探测器和太阳能电池,场效应晶体管和发光二极管)非常有吸引力。用于光电器件的共轭聚合物具有许多理想的性能,例如柔韧性和韧性,以及它们的导电性能。了解和优化活性聚合物层和导电基材之间的电荷传输对光电器件的优化至关重要。这项研究集中于共价连接到导电或半导电基材上的共轭聚合物的设计,合成,自组装和电子转移。具体而言,开发了膦酸末端官能化的聚苯撑乙烯撑(PPV)并将其自组装到氧化铟锡(ITO)衬底上。这项研究证明了原子力显微镜(AFM)如何与常规电子传递速率研究方法(包括循环伏安法(CV))结合起来有效地表征聚合物,以测定聚合物和聚合物/导体界面系统中的电子传递速率。这项研究发现,共价连接和自组装膜的电子传递速率比旋涂膜快得多。这项研究的知识对于设计潜在的基于聚合物的电子和光电薄膜器件非常有用。

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