羧酸与DMSO相互作用的量子化学研究

Q4 Chemistry
Mu Ren, Ao Rigele, Na Shun, Narantsogt Natsagdorj
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引用次数: 0

摘要

利用量子力学和分子动力学理论的量子化学计算方法在过去几十年中发展迅速,量子化学计算几乎渗透到化学的所有领域。氢键是普遍存在的弱分子间相互作用。此外,氢键的键合机理被认为与化学键合的键合机制不同。由于实验研究的困难,从理论上更准确地计算氢键是理解氢键的一种更方便、更直接的方法。密度泛函理论(DFT)是量子化学计算中应用最广泛的通用函数,为大多数化学系统提供了准确的结果。本文对乙酸和二甲基亚砜氢键二聚物的几何结构进行了优化,并确定了其势能面。使用M06-2X/6-311++G(3d,2p)交换相关函数和DFT-D3(BJ)经验色散校正,对四种相关氢键二聚体配合物的几何结构进行了充分优化。我们发现氢键是静电相互作用和共价键的混合物,氢键是一种具有不同百分比静电和共价性质的力,而不是一种独立于化学键的特殊力。因此,更明确地定义我们对物质之间作用力的固有分类,为我们未来研究氢键等弱相互作用提供了一个新的视角。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A quantum chemical study of the interaction of carboxylic acids with DMSO
Quantum chemical computational methods, which use quantum mechanics and molecular dynamics theory, have developed rapidly in the past few decades, and quantum chemical computation has penetrated almost all fields of chemistry. Hydrogen bonds are ubiquitously common weak intermolecular interactions. Moreover, the bonding mechanism of hydrogen bonds is considered to be different from that of chemical bonding. Because of the difficulty of experimental studies, a more accurate calculation of hydrogen bonding from theory is a more convenient and direct method to understand hydrogen bonding. Density functional theory (DFT) is the most widely used general function in quantum chemical calculations, giving accurate results for most chemical systems. In this paper, the geometries of the hydrogen-bonded dimer complex of acetic acid and DMSO was structurally optimized and potential energy surface was determined. The geometries of four related hydrogen-bonded dimer complexes were fully optimized using the M06-2X/6-311++G (3d, 2p) exchange-correlation functional with DFT-D3(BJ) empirical dispersion correction. We found that hydrogen bonding is a mixture of electrostatic interactions and covalent bonding, and that hydrogen bonding is a kind of force with different percentages of electrostatic and covalent character, rather than a special force independent of chemical bonding. Thus, more clearly defining our inherent classification of forces between substances provides a new perspective for our future study of weak interactions such as hydrogen bonding.
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来源期刊
Mongolian Journal of Chemistry
Mongolian Journal of Chemistry Materials Science-Materials Chemistry
CiteScore
1.10
自引率
0.00%
发文量
5
审稿时长
20 weeks
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