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C-H···O氢键。典型的甲烷-甲醛体系:批判性评估。

C-H···O Hydrogen Bonding. The Prototypical Methane-Formaldehyde System: A Critical Assessment.

作者信息

Moore Kevin B, Sadeghian Keyarash, Sherrill C David, Ochsenfeld Christian, Schaefer Henry F

机构信息

Center for Computational Quantum Chemistry, University of Georgia , Athens, Georgia 30602, United States.

Department of Chemistry, Ludwig-Maximilians University (LMU) , Munich D-81377, Germany.

出版信息

J Chem Theory Comput. 2017 Nov 14;13(11):5379-5395. doi: 10.1021/acs.jctc.7b00753. Epub 2017 Oct 31.

Abstract

Distinguishing the functionality of C-H···O hydrogen bonds (HBs) remains challenging, because their properties are difficult to quantify reliably. Herein, we present a study of the model methane-formaldehyde complex (MFC). Six stationary points on the MFC potential energy surface (PES) were obtained at the CCSD(T)/ANO2 level. The CCSDT(Q)/CBS interaction energies of the conformers range from only -1.12 kcal mol to -0.33 kcal mol, denoting a very flat PES. Notably, only the lowest energy stationary point (MFC1) corresponds to a genuine minimum, whereas all other stationary points-including the previously studied ideal case of a(C-H···O) = 180°-exhibit some degree of freedom that leads to MFC1. Despite the flat PES, we clearly see that the HB properties of MFC1 align with those of the prototypical water dimer O-H···O HB. Each HB property generally becomes less prominent in the higher-energy conformers. Only the MFC1 conformer prominently exhibits (1) elongated C-H donor bonds, (2) attractive C-H···O═C interactions, (3) n(O) → σ*(C-H) hyperconjugation, (4) critical points in the electron density from Bader's method and from the noncovalent interactions method, (5) positively charged donor hydrogen, and (6) downfield NMR chemical shifts and nonzero J(C-H···O) coupling constants. Based on this research, some issues merit further study. The flat PES hinders reliable determinations of the HB-induced shifts of the C-H stretches; a similarly difficult challenge is observed for the experiment. The role of charge transfer in HBs remains an intriguing open question, although our BLW and NBO computations suggest that it is relevant to the C-H···O HB geometries. These issues notwithstanding, the prominence of the HB properties in MFC1 serves as clear evidence that the MFC is predominantly bound by a C-H···O HB.

摘要

区分C-H···O氢键(HBs)的功能仍然具有挑战性,因为其性质难以可靠地量化。在此,我们展示了对模型甲烷 - 甲醛复合物(MFC)的一项研究。在CCSD(T)/ANO2水平上获得了MFC势能面(PES)上的六个驻点。构象异构体的CCSDT(Q)/CBS相互作用能范围仅从 -1.12 kcal/mol到 -0.33 kcal/mol,表明PES非常平坦。值得注意的是,只有能量最低的驻点(MFC1)对应一个真正的最小值,而所有其他驻点——包括先前研究的理想情况α(C-H···O) = 180°——都表现出某种程度的自由度,会导致转变为MFC1。尽管PES平坦,但我们清楚地看到MFC1的HB性质与典型的水二聚体O-H···O HB的性质一致。在能量较高的构象异构体中,每种HB性质通常会变得不那么突出。只有MFC1构象异构体显著表现出:(1)伸长的C-H供体键,(2)有吸引力的C-H···O═C相互作用,(3)n(O) → σ*(C-H)超共轭,(4)来自巴德方法和非共价相互作用方法的电子密度临界点,(5)带正电的供体氢,以及(6)低场NMR化学位移和非零J(C-H···O)耦合常数。基于这项研究,一些问题值得进一步探讨。平坦的PES阻碍了对C-H伸缩振动的HB诱导位移的可靠测定;实验中也观察到了类似的难题。尽管我们的BLW和NBO计算表明电荷转移与C-H···O HB几何结构相关,但HB中电荷转移的作用仍然是一个有趣的悬而未决的问题。尽管存在这些问题,但MFC1中HB性质的突出表现清楚地证明了MFC主要由C-H···O HB结合。

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