首页> 外文期刊>Journal of Solution Chemistry >Synthesis, Spectroscopic and Computational Studies of Charge-Transfer Complexation Between 4-Aminoaniline and 2,3-Dichloro-5,6-dicyano-1,4-benzoquinone
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Synthesis, Spectroscopic and Computational Studies of Charge-Transfer Complexation Between 4-Aminoaniline and 2,3-Dichloro-5,6-dicyano-1,4-benzoquinone

机译:4-氨基烷和2,3-二氯-5,6-二氰基-1,4-苯醌之间的电荷转移络合的合成,光谱和计算研究

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摘要

A charge-transfer (CT) complex that forms from the reaction of the donor 4-amino aniline (4AA) and the pi-acceptor 2,3-dichloro-5,6-dicyano-p-benzoquinone (DDQ) have been studied and characterized experimentally and as well as theoretically at room temperature. The experimental work includes the application of UV-visible spectroscopy to identify the CT band of the CT-complex. The composition of the complex has been investigated using spectrophotometric titration and Job's method of continuous variation and found to be 1:1. Furthermore, to calculate the formation constant and molar extinction coefficient, we have used the Benesi-Hildebrand equation. Infrared, H-1 NMR, C-13 NMR and mass spectral studies were used to characterize and confirm the formation of the CT-complex. The experimental studies were supported by quantum chemical simulations using density functional theory. The computational analysis of molecular geometry, Mulliken charges, and molecular electrostatic potential surfaces of reactants and complexes are helpful in assigning the CT route. The C=O bond length of DDQ increased upon complexation with 4AA. We have also observed that a substantial amount of charge has been transferred from 4AA to DDQ in the process of complexation. An excellent consistency has been achieved between experimental and theoretical results.
机译:已经研究了从供体4-氨基苯胺(4AA)的反应和PI-Contentor 2,3-二氯-5,6-二氰基-P-苯醌(DDQ)中形成的电荷转移(CT)复合物。在实验上表征,在室温下理论上。实验性工作包括uV可见光谱施用以鉴定CT-复合物的CT带。已经使用分光光度滴定和作业的连续变化方法研究了复合物的组成,发现为1:1。此外,为了计算形成恒定和摩尔消光系数,我们使用了Benesi-Hildebrand方程。红外线,H-1 NMR,C-13 NMR和质谱研究用于表征和证实CT-复合物的形成。使用密度泛函理论,量子化学模拟支持实验研究。分子几何,Mulliken电荷和反应物和复合物的分子静电电位表面的计算分析有助于分配CT路线。 DDQ的C = O键长度随4AA络合而增加。我们还观察到,在络合过程中,大量电荷从4AA转移到DDQ。在实验和理论结果之间取得了优异的一致性。

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