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二取代乙烷中的分子内氢键。通过对4-氨基-4-氧代丁酸酯(琥珀酰胺酸酯)和单氢1,4-丁酸酯(单氢琥珀酸酯)阴离子的构象分析比较NH…O-和OH…O-氢键。

Intramolecular hydrogen bonding in disubstituted ethanes. A comparison of NH...O- and OH...O- Hydrogen bonding through conformational analysis of 4-amino-4-oxobutanoate (succinamate) and monohydrogen 1,4-butanoate (monohydrogen succinate) anions.

作者信息

Rudner Mark S, Jeremic Senka, Petterson Krag A, Kent David R, Brown Katherine A, Drake Michael D, Goddard William A, Roberts John D

机构信息

Gates and Crellin Laboratories of Chemistry and Materials and Process Simulation Center of the Beckman Institute, California Institute of Technology, Pasadena, California 91125, USA.

出版信息

J Phys Chem A. 2005 Oct 13;109(40):9076-82. doi: 10.1021/jp052925c.

Abstract

Relative strengths of amide NH...O- and carboxyl OH...O- hydrogen bonds were investigated via conformational analysis of succinamate and monohydrogen succinate anions with the aid of vicinal proton-proton NMR couplings and B3LYP DFT quantum mechanical calculations for a variety of solvents. New experimental results for succinamate are compared with those obtained from previous studies of monohydrogen succinate. While some computational results for monohydrogen succinate were published previously, the results contained herein are the product of a more powerful methodology than that used earlier. The experimental results clearly show that intramolecular hydrogen-bond formation is more favored in aprotic solvents than in protic solvents for both molecules. Furthermore, the preference of the succinate monoanion for the gauche conformation is much stronger in aprotic solvents than that of succinamate, indicating that the OH...O- hydrogen bond is substantially stronger than its NH...O- counterpart, despite the approximately 5 kcal cost for formation of the E configuration of the carboxyl group needed to make an intramolecular hydrogen bond. The actual energy differences between formation of internal hydrogen bonds for monohydrogen succinate and succinamate anion were estimated by comparison of the relative values of K1 of the respective acids in water and DMSO by a procedure first developed by Westheimer. Recent theoretical work with succinamate highlights the necessity of considering substituent orientational degrees of freedom to understand the conformational equilibria of the central CH2-CH2 torsions in disubstituted ethanes. Similar methodology is applied here to succinic acid monoanion, by mapping potential-energy surfaces with respect to the CH2-CH2 torsional, carboxyl-substituent rotational, and carboxyl-proton E/Z isomeric degrees of freedom. Boltzmann populations were compared with gauche populations estimated from the experimentally determined coupling constants. The quantum mechanical results for succinamate show a much weaker tendency toward hydrogen bonding than for the succinic acid monoanion. However, the theoretical methods employed appear to substantially overestimate contributions from intramolecularly hydrogen-bonded structures for the succinic acid monoanion when compared with experimental results. Natural bond orbital analysis, applied to the quantum mechanical wave functions of fully optimized gauche and trans structures, showed a strong correlation between the population of amide sigma*(N-H) and carboxyl sigma*(O-H) antibonding orbitals and apparent hydrogen-bonding behavior.

摘要

通过琥珀酸酰胺阴离子和磷酸二氢琥珀酸阴离子的构象分析,借助邻位质子 - 质子核磁共振耦合以及针对多种溶剂的B3LYP密度泛函理论量子力学计算,研究了酰胺NH...O - 和羧基OH...O - 氢键的相对强度。将琥珀酸酰胺的新实验结果与先前对磷酸二氢琥珀酸的研究结果进行了比较。虽然先前已发表了一些关于磷酸二氢琥珀酸的计算结果,但本文所包含的结果是采用比早期更强大的方法得出的。实验结果清楚地表明,对于这两种分子,在非质子溶剂中比在质子溶剂中更有利于分子内氢键的形成。此外,在非质子溶剂中,琥珀酸单阴离子对gauche构象的偏好比琥珀酸酰胺强得多,这表明OH...O - 氢键比其NH...O - 对应物要强得多,尽管形成分子内氢键所需的羧基E构型的形成成本约为5千卡。通过Westheimer首次开发的程序,比较了各自酸在水和二甲基亚砜中K1的相对值,估算了磷酸二氢琥珀酸和琥珀酸酰胺阴离子形成内氢键的实际能量差异。最近关于琥珀酸酰胺的理论研究强调了考虑取代基取向自由度以理解二取代乙烷中中心CH2 - CH2扭转构象平衡的必要性。这里将类似的方法应用于琥珀酸单阴离子,通过绘制相对于CH2 - CH2扭转、羧基取代基旋转和羧基质子E/Z异构自由度的势能面。将玻尔兹曼分布与根据实验测定的耦合常数估算的gauche分布进行了比较。琥珀酸酰胺的量子力学结果显示出比琥珀酸单阴离子弱得多的氢键形成趋势。然而,与实验结果相比,所采用的理论方法似乎大大高估了琥珀酸单阴离子分子内氢键结构的贡献。对完全优化的gauche和反式结构的量子力学波函数进行自然键轨道分析,结果表明酰胺σ*(N - H)和羧基σ*(O - H)反键轨道的占据与明显的氢键行为之间存在很强的相关性。

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