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水杨醛席夫碱的酮式结构:结构与理论研究

Keto forms of salicylaldehyde Schiff bases: structural and theoretical aspects.

作者信息

Chatziefthimiou Spyros D, Lazarou Yannis G, Hadjoudis Eugene, Dziembowska Tereza, Mavridis Irene M

机构信息

Institute of Physical Chemistry, National Center for Scientific Research Demokritos, P.O. Box 60228, Aghia Paraskevi 15310, Greece.

出版信息

J Phys Chem B. 2006 Nov 30;110(47):23701-9. doi: 10.1021/jp064110p.

Abstract

Twelve Schiff bases of methoxy-substituted salicylaldehyde have been examined by crystallographic and spectroscopic methods, as well as by DFT theoretical calculations in order to investigate the effect of the substituent's position on the keto-enol equilibrium in the crystalline state. Four out of the 10 structurally characterized compounds with methoxy substitution on the para and/or ortho positions with respect to the aldimine bridge and deriving from aliphatic amines or alkylarylamines are found as cis-keto tautomers and form dimers. In contrast, the five pure enol tautomers derive either from aliphatic or alkylarylamines and are meta substituted or from aniline or benzylamine and are para and/or ortho methoxy substituted. The DFT calculations support the crystallographic results and, moreover, they have shown that keto and enol tautomers are affected differently by the relative arrangement of the monomers. Overall, the DFT calculations point to a plausible hypothesis for the stabilization of the keto form in the crystalline state: In cases with a sufficiently low enol-keto energy difference of the isolated monomers, as when the methoxy group is at ortho and/or para positions with respect to the aldimino group, extra stabilization of the keto form is derived from molecular association, thus leading to its crystallization.

摘要

通过晶体学和光谱学方法以及密度泛函理论(DFT)计算,对12种甲氧基取代水杨醛席夫碱进行了研究,以探讨取代基位置对晶体状态下酮 - 烯醇平衡的影响。在10种结构表征的化合物中,有4种化合物在相对于醛亚胺桥的对位和/或邻位上有甲氧基取代,且衍生自脂肪胺或烷基芳胺,它们以顺式酮互变异构体形式存在并形成二聚体。相比之下,5种纯烯醇互变异构体要么衍生自脂肪胺或烷基芳胺且为间位取代,要么衍生自苯胺或苄胺且为对位和/或邻位甲氧基取代。DFT计算支持了晶体学结果,此外,还表明酮和烯醇互变异构体受单体相对排列的影响不同。总体而言,DFT计算为晶体状态下酮形式的稳定化提出了一个合理的假设:在孤立单体的烯醇 - 酮能量差足够低的情况下,例如当甲氧基相对于醛亚胺基团处于邻位和/或对位时,酮形式的额外稳定性源于分子缔合,从而导致其结晶。

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