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二取代乙烷中的分子内氢键:琥珀酸单阴离子构象平衡量子力学计算的一般考虑与方法

Intramolecular hydrogen bonding in disubstituted ethanes: general considerations and methodology in quantum mechanical calculations of the conformational equilibria of succinamate monoanion.

作者信息

Rudner Mark S, Kent David R, Goddard William A, Roberts John D

机构信息

Chemical Laboratories and Beckman Institute, California Institute of Technology, Pasadena, California 91125, USA.

出版信息

J Phys Chem A. 2005 Oct 13;109(40):9083-8. doi: 10.1021/jp052953v.

Abstract

The importance of intramolecular hydrogen bonding between the carboxylate oxygen and amide proton of succinamate anion has been investigated by quantum mechanical simulations as a function of solvent for comparison with conformational equilibria estimated by NMR spectroscopy. The focus is on those methodological considerations of general interest to the conformational equilibrium problem, which are also particularly relevant to the quantum calculations. The roughly planar symmetry of the amide and carboxylate substituents of succinamate anion and the possibility of intramolecular hydrogen-bond formation together suggest that the orientational degrees of freedom of the substituents could play an important role in the equilibrium of the CH2-CH2 torsion. To test this hypothesis, two-dimensional potential-energy surfaces (PESs) were mapped out from the quantum mechanical calculations, with coordinates corresponding to the CH2-CH2 torsional and amide group rotational degrees of freedom. The Boltzmann populations obtained from two-dimensional PESs and those obtained from a one-dimensional adiabatic surface for the CH2-CH2 torsion were compared with the experimental results. In these comparisons, the agreement of calculated gauche fractions with corresponding experimental values was checked, as well as the agreement between predicted coupling constants and those determined from experimental spectra. In polar protic and aprotic solvents, where highly polar trans conformations can be stabilized by dipole-dipole and hydrogen-bonding interactions with the solvent, the orientational degree of freedom of the amide substituent appears to play a sufficiently important role in the CH2-CH2 torsional equilibrium that it cannot be safely ignored in the simulations.

摘要

通过量子力学模拟研究了琥珀酰胺酸根阴离子的羧酸根氧与酰胺质子之间分子内氢键的重要性,并将其作为溶剂的函数,以便与通过核磁共振光谱估计的构象平衡进行比较。重点是构象平衡问题中普遍感兴趣的那些方法学考虑因素,这些因素对于量子计算也特别相关。琥珀酰胺酸根阴离子的酰胺和羧酸根取代基大致呈平面对称性,以及分子内氢键形成的可能性共同表明,取代基的取向自由度可能在CH2-CH2扭转的平衡中起重要作用。为了验证这一假设,从量子力学计算中绘制了二维势能面(PESs),其坐标对应于CH2-CH2扭转和酰胺基团旋转自由度。将从二维PESs获得的玻尔兹曼分布以及从CH2-CH2扭转的一维绝热表面获得的玻尔兹曼分布与实验结果进行了比较。在这些比较中,检查了计算的gauche分数与相应实验值的一致性,以及预测的耦合常数与从实验光谱确定的耦合常数之间的一致性。在极性质子溶剂和非质子溶剂中,高度极性的反式构象可以通过与溶剂的偶极-偶极和氢键相互作用而稳定,酰胺取代基的取向自由度似乎在CH2-CH2扭转平衡中起着足够重要的作用,以至于在模拟中不能安全地忽略它。

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