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The structure of cinnamic acid and cinnamoyl azides, a unique localized π system: The electronic spectra and DFT-treatment

机译:肉桂酸和肉桂酰基叠氮化物的结构,一种独特的局部π系统:电子光谱和DFT处理

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The electronic absorption spectra of cinnamic acid and some cinnamoyl azides have been recorded in absolute methanol and investigated to explore the structure of the titled compounds. Cinnamic acid and its derivatives have a double bond, -C=C-, between the aromatic ring and the carboxyl group which disturbs the π electron system of the molecule and inhibits electron delocalization as compared with styrene or benzoic acid. The azide group is neither a strong electron donor nor a strong electron acceptor but it increases conjugation in the molecule. The observed spectra confirm that each of the cinnamic acid and cinnamoyl azide molecules is one of a kind of unique disturbed π-system and not of different independent π systems, each on a fragment of the molecule as predicted by the quantum theory of atom in molecule calculations. The spectra of cinnamic acid and its derivatives are not the additive spectra of the different fragments of the molecule. The spectra are characterized by few number, low intensity, and high-energy electronic transitions (absorption bands) in the UV-vis region. Molecular orbital calculations confirmed the spectral observations. The optimized geometry of the ground state of the studied compounds is calculated using the DFT/B3LYP/6-31G~(**) level of theory and an explicit molecular orbital analysis is carried out. Excited states are calculated using the TD/DFT procedure as implemented by the Gamess 2009 package of programs. The correspondence between calculated and the observed transition energies is adequate.
机译:肉桂酸和一些肉桂酰基叠氮化物的电子吸收光谱已在无水甲醇中记录,并进行了研究以探索标题化合物的结构。肉桂酸及其衍生物在芳环和羧基之间具有双键-C = C-,与苯乙烯或苯甲酸相比,它干扰分子的π电子系统并抑制电子离域。叠氮化物基团既不是强电子供体也不是强电子受体,但是它增加了分子中的结合。观察到的光谱证实,肉桂酸和肉桂酰叠氮化物分子中的每一个都是一种独特的受干扰的π系统,而不是不同的独立π系统,它们分别在分子的一个片段上,如分子中原子的量子理论所预测的那样计算。肉桂酸及其衍生物的光谱不是分子不同片段的累加光谱。该光谱的特征在于在紫外可见区域中的数量少,强度低和能量高的电子跃迁(吸收带)。分子轨道计算证实了光谱观察。使用理论值DFT / B3LYP / 6-31G〜(**)来计算所研究化合物基态的最佳几何构型,并进行了明确的分子轨道分析。兴奋状态是使用TD / DFT程序计算的,该程序由Gamess 2009程序包实施。计算和观察到的跃迁能量之间的对应关系是足够的。

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