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Energy level determination of purine containing blue light emitting organic compounds

机译:含嘌呤的发射蓝光的有机化合物的能级测定

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Organic light emitting diodes (OLED) have found their applications in the mobile and TV screens. Till now the commercially available diodes are made by expensive thermal evaporation in a vacuum. The costs of OLED fabrication could be decreased by applying low-cost wet casting methods, for example, spin-coating. In this work, we have studied a group of blue light emitting purine derivatives which could potentially be used in OLEDs. The advantage of these compounds is their ability to form amorphous thin films from solutions. All the thin films were prepared by the spin-coating method from chloroform solution on ITO glass. The position of hole and electron transport energy levels is important for efficient OLED fabrication. Ionization energy was determined using photoelectron yield spectroscopy. The gap between ionization energy and electron affinity was determined using photoconductivity measurements. Electron affinity (E_a) then was calculated as a difference between ionization energy (Ⅰ) and photoconductivity threshold value (E_(th)). Changes in the energy level values depending on the molecule structure were investigated. The position of electron acceptor group strongly affects the gap between ionization energy and electron affinity, while with the help of the attached substitute groups it is possible to alter the ionization energy. Fine "tuning" of the ionization energy values can be achieved by altering the length of the "tail" where the inactive bulky group is attached.
机译:有机发光二极管(OLED)已在移动和电视屏幕中找到了它们的应用。到目前为止,市售二极管是通过真空昂贵的热蒸发制成的。通过施加低成本湿铸造方法,例如旋涂,可以降低OLED制造的成本。在这项工作中,我们研究了一组蓝色发光嘌呤衍生物,其可能是在OLED中使用的。这些化合物的优点是它们能够从溶液中形成无定形薄膜。所有薄膜通过纺丝涂层法从ITO玻璃上的氯仿溶液制备。孔和电子传输能级的位置对于有效的OLED制造是重要的。使用光电子屈服光谱测定电离能量。使用光电导测量测定电离能量和电子亲和力之间的间隙。然后计算电子亲和力(E_A)作为电离能量(Ⅰ)和光电导阈值(E_(TH))之间的差异。研究了根据分子结构的能量水平值的变化。电子受体组的位置强烈影响电离能量和电子亲和力之间的间隙,而借助于附着的替代组,可以改变电离能量。通过改变附着无活性庞大基团的“尾”的长度,可以实现电离能值的精细“调谐”。

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