用于光电器件设计的咔唑衍生物单体的合成及其某些电化学特性

Merve Yandimoglu, Kamuran Gorgun, Evrim Hur
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引用次数: 0

摘要

低成本仪器可实现电化学技术的高灵敏度、高准确度和高精确度,是研究新分子电化学特性的最合适分析方法。在这些技术中,广泛使用的循环伏安法可以测定电子特性,如分子能级和轨道结构、氧化还原特性、传感器能力、表面活性等。咔唑分子可以从不同位置进行衍生,从而改变其电学和光学特性。这些化合物是杂环结构单元,可用作光电设备中的有机敏化剂和半导体材料。由于咔唑结构中的氮-氢(N-H)键存在一个氢原子,可被不同的官能团取代,因此咔唑非常适合氮基衍生化研究。本研究利用乌尔曼反应和铃木-宫浦反应合成了两种不同的咔唑单体(IIa 和 IIIa),并利用 1H NMR、13C NMR、UV-Vis 和 Flouresence 光谱技术对其进行了表征。对每种化合物都使用了三种不同的工作电极(金、Gc、铂盘电极)进行了循环伏安实验。由于金盘电极上的伏安图得出了化合物的最佳氧化状态,因此在计算能级时使用了该电极。化合物的 HOMO 值和 Eg 值分别从循环伏安实验和光学吸收带中推导出来。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Synthesis and Some Electrochemical Properties of Carbazole Derivative Monomers for Optoelectronic Device Design
Low-cost instruments are used to achieve high sensitivity, accuracy and precision with electrochemical techniques, making them the most suitable analytical methods used to investigate the electrochemical properties of a new molecule. Among these techniques, cyclic voltammetry, which is widely employed, allows for the determination of electronic characteristics such as molecular energy levels and orbital structure, redox properties, sensor capabilities, surface activity, and more. The carbazole molecule can undergo derivatization from various positions, allowing for alterations in its electrical and optical properties. These compounds serve as heterocyclic building blocks that can be utilized as materials for organic sensitizers and semiconductors in optoelectronic devices. Due to the presence of a hydrogen atom in the nitrogen-hydrogen (N-H) bond within the carbazole structure, which can be replaced with different functional groups, carbazole is highly suitable for nitrogen-based derivatization studies. In this study, two different carbazole monomers (IIa and IIIa), which could be potential optoelectronic, were synthesized using the Ullman and Suzuki-Miyaura reaction and characterized using 1H NMR, 13C NMR, UV-Vis, and Flouresence spectroscopy techniques. The cyclic voltammetry experiments were performed using three different working electrodes (Au, Gc, Pt disk electrodes) for each compound. Since the optimum oxidation of the compounds was obtained from the voltammograms on the gold disk electrode, this electrode was used in the calculation of energy levels. HOMO and Eg values of the compounds were deduced from cyclic voltammetry experiments and the optical absorption bands, respectively.
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