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质子化氨基偶氮苯中的偶氮-腙互变异构:共振拉曼光谱和量子化学计算

Azo-hydrazone tautomerism in protonated aminoazobenzenes: resonance Raman spectroscopy and quantum-chemical calculations.

作者信息

Matazo Deborah R C, Ando Rômulo A, Borin Antonio C, Santos Paulo S

机构信息

Instituto de Química-USP//Instituto do Milênio de Materiais Complexos II, Av Lineu Prestes, 748 São Paulo, BR 05508-000, Brazil.

出版信息

J Phys Chem A. 2008 May 15;112(19):4437-43. doi: 10.1021/jp800217c. Epub 2008 Apr 11.

Abstract

The protonation effect on the vibrational and electronic spectra of 4-aminoazobenzene and 4-(dimethylamino)azobenzene was investigated by resonance Raman spectroscopy, and the results were discussed on the basis of quantum-chemical calculations. Although this class of molecular systems has been investigated in the past concerning the azo-hydrazone tautomerism, the present work is the first to use CASSCF/CASPT2 calculations to unveil the structure of both tautomers as well the nature of the molecular orbitals involved in chromophoric moieties responsible for the resonance Raman enhancement patterns. More specifically both the resonance Raman and theoretical results show clearly that in the neutral species, the charge transfer transition involves mainly the azo moiety, whereas in the protonated forms there is a great difference, depending on the tautomer. In fact, for the azo tautomer the transition is similar to that observed in the corresponding neutral species, whereas in the hydrazone tautomer such a transition is much more delocalized due to the contribution of the quinoid structure. The characterization of protonated species and the understanding of the tautomerization mechanism are crucial for controlling molecular properties depending on the polarity and pH of the medium.

摘要

通过共振拉曼光谱研究了质子化对4-氨基偶氮苯和4-(二甲基氨基)偶氮苯振动光谱和电子光谱的影响,并基于量子化学计算对结果进行了讨论。尽管过去已经对这类分子体系的偶氮-腙互变异构进行了研究,但目前的工作首次使用CASSCF/CASPT2计算来揭示两种互变异构体的结构以及负责共振拉曼增强模式的发色团部分所涉及分子轨道的性质。更具体地说,共振拉曼和理论结果都清楚地表明,在中性物种中,电荷转移跃迁主要涉及偶氮部分,而在质子化形式中则存在很大差异,这取决于互变异构体。事实上,对于偶氮互变异构体,跃迁与在相应中性物种中观察到的跃迁相似,而在腙互变异构体中,由于醌型结构的贡献,这种跃迁更加离域。质子化物种的表征以及互变异构化机制的理解对于根据介质的极性和pH值控制分子性质至关重要。

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