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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Hydrogen bonding, halogen bonding and lithium bonding: an atoms in molecules and natural bond orbital perspective towards conservation of total bond order, inter- and intra-molecular bonding
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Hydrogen bonding, halogen bonding and lithium bonding: an atoms in molecules and natural bond orbital perspective towards conservation of total bond order, inter- and intra-molecular bonding

机译:氢键,卤素键合和锂键合:分子中的原子和天然键的轨道视角,用于保护总键序列,间和分子间键合

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One hundred complexes have been investigated exhibiting D-X···A interactions, where X = H, CI or Li and DX is the 'X bond' donor and A is the acceptor. The optimized structures of all these complexes have been used to propose a generalized 'Legon-Millen rule' for the angular geometry in all these interactions. A detailed Atoms in Molecules (AIM) theoretical analysis confirms an important conclusion, known in the literature: there is a strong correlation between the electron density at the X···A bond critical point (BCP) and the interaction energy for all these interactions. In addition, we show that extrapolation of the fitted line leads to the ionic bond for Li-bonding (electrostatic) while for hydrogen and chlorine bonding, it leads to the covalent bond. Further, we observe a strong correlation between the change in electron density at the D-X BCP and that at the X···A BCP, suggesting conservation of the bond order. The correlation found between penetration and electron density at BCP can be very useful for crystal structure analysis, which relies on arbitrary van der Waals radii for estimating penetration. Various criteria proposed for shared- and closed-shell interactions based on electron density topology have been tested for H/Cl/Li bonded complexes. Finally, using the natural bond orbital (NBO) analysis it is shown that the D-X bond weakens upon X bond formation, whether it is ionic (DLi) or covalent (DH/DCl) and the respective indices such as ionicity or covalent bond order decrease. Clearly, one can think of conservation of bond order that includes ionic and covalent contributions to both D-X and X···A bonds, for not only X = H/Cl/Li investigated here but also any atom involved in intermolecular bonding.
机译:已经研究了展示D-X··············································································································研究“X键”的供体,A是受体。所有这些复合物的优化结构已被用于提出所有这些相互作用中的角几何形状的广义的“乐高队规则”。分子中的详细原子(AIM)理论分析证实了一个重要的结论,在文献中已知:X····键关键点(BCP)的电子密度与所有这些相互作用的相互作用能量之间存在强烈的相关性。此外,我们表明,配合线的外推导致对氢和氯键合的Li键合(静电)的离子键,它导致共价键。此外,我们观察到D-X BCP的电子密度的变化与X ... A BCP之间的强烈相关性,建议节约键合。在BCP的穿透和电子密度之间发现的相关性对于晶体结构分析非常有用,这依赖于任意范德瓦尔斯半径来估算渗透。已经测试了基于电子密度拓扑结构的共用和封闭壳相互作用的各种标准,用于H / Cl / Li键合复合物。最后,使用天然键(NBO)分析显示,DX键在X键形成时削弱,无论是离子(DLI)还是共价(DH / DCL)和相应的指标,如离子性或共价键订单减少。显然,人们可以考虑保留债券命令,包括离子和共价贡献D-X和X···键,不仅在此研究的X = H / Cl / Li,还在这里研究,还具有分子间键合的任何原子。

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