Topological Properties of Chemical Bonds from Static and Dynamic Electron Densities.

IF 1.1 4区 化学 Q4 CHEMISTRY, INORGANIC & NUCLEAR Zeitschrift fur Anorganische und Allgemeine Chemie Pub Date : 2013-09-01 Epub Date: 2013-07-23 DOI:10.1002/zaac.201200535
Siriyara Jagannatha Prathapa, Jeanette Held, Sander van Smaalen
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引用次数: 3

Abstract

Dynamic and static electron densities (EDs) based on the independent spherical atom model (IAM) and multipole (MP) models of crambin were successfully computed, holding no series-termination effects. The densities are compared to EDs of small biological molecules at diverse temperatures. It is outlined that proteins exhibit an intrinsic flexibility, present as frozen disorder at 100 K, in contrast to small molecules. The flexibility of the proteins is reflected by atomic displacement parameters (B-factors), which are considerably larger than for small molecules at 298 K. Thus, an optimal deconvolution of deformation density and thermal motion is not guaranteed, which prevents a free refinement of MP parameters but allows an application of transferable, fixed MP parameters. The analysis of the topological properties, such as the density at bond critical points (BCPs) and the Laplacian, reveals systematic differences between static and dynamic EDs. Zero-point-vibrations, yet present in dynamic EDs at low temperature, affect but marginally the EDs of small molecules. The zero-point-vibrations cause a smearing of the ED, which becomes more pronounced with increasing temperature. Topological properties, primarily the Laplacian, of covalent bonds appear to be more sensitive to effects by temperature and the polarity of the bonds. However, dynamic EDs at ca. 20 K based on MP models provide a good characterization of chemical bonding. Both the density at BCPs and the Laplacian of hydrogen bonds constitute similar values from static and dynamic EDs for all studied temperatures. Deformation densities demonstrate the necessity of the employment of MP parameters in order to comprise the nature of covalent bonds. The character of hydrogen bonds can be roughly pictured by IAM, whereas MP parameters are recommended for a classification of hydrogen bonds beyond a solely interpretation of topological properties.

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从静态和动态电子密度看化学键的拓扑性质。
在独立球形原子模型(IAM)和多极子模型(MP)的基础上,成功地计算了蛋白的动态和静态电子密度(EDs),没有序列终止效应。密度与小生物分子在不同温度下的能谱进行了比较。本文概述了与小分子相比,蛋白质表现出内在的灵活性,在100 K时表现为冷冻紊乱。蛋白质的柔韧性通过原子位移参数(b因子)来反映,在298 K时,b因子比小分子大得多。因此,不能保证变形密度和热运动的最佳反褶积,这阻止了MP参数的自由细化,但允许应用可转移的固定MP参数。通过对拓扑性质的分析,如键临界点密度(bcp)和拉普拉斯函数,揭示了静态电子能谱与动态电子能谱的系统差异。零点振动虽然存在于低温下的动态能谱中,但对小分子的能谱影响很小。零点振动引起ED的涂抹,随着温度的升高,这种涂抹变得更加明显。共价键的拓扑性质,主要是拉普拉斯,似乎对温度和键的极性的影响更敏感。然而,基于MP模型的20 K左右的动态能谱可以很好地表征化学键。在所有研究温度下,bcp的密度和氢键的拉普拉斯函数值在静态和动态能谱中都具有相似的值。变形密度证明了为了包含共价键的性质,使用MP参数的必要性。氢键的特征可以通过IAM大致描绘出来,而MP参数被推荐用于氢键的分类,而不仅仅是对拓扑性质的解释。
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来源期刊
Zeitschrift fur Anorganische und Allgemeine Chemie
Zeitschrift fur Anorganische und Allgemeine Chemie 化学-无机化学与核化学
CiteScore
2.60
自引率
14.30%
发文量
308
审稿时长
1 months
期刊介绍: ZAAC is an international scientific journal which publishes original papers on new relevant research results from all areas of inorganic chemistry, solid state chemistry, and co-ordination chemistry. The contributions reflect the latest findings in these research areas and serve the development of new materials, such as super-hard materials, electrical superconductors, or intermetallic compounds. Up-to-date physical methods for the characterization of new chemical compounds and materials are also described.
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