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首页> 外文期刊>Canadian Journal of Chemistry >An investigation of hybridization and the orbital models of molecular electronic structure for CH4, NH3, and H2O
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An investigation of hybridization and the orbital models of molecular electronic structure for CH4, NH3, and H2O

机译:杂交及CH4,NH3和H2O分子电子结构的杂交和轨道模型

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摘要

Observations of the physical behaviour (motions) of the valence (frontier) electrons in the iconic benchmark hydride molecules CH4, NH3, and H2O are used to provide a direct experimental evaluation of hybridization and of the localized and delocalized orbital models of molecular electronic structure, after more than 80 years since the initial proposals of these theoretical concepts. Our previously published experimental measurements of valence (frontier) electron momentum probability distributions, made by electron momentum spectroscopy (EMS), are compared with those calculated using the localized molecular orbital (LMO) model and a range of hybrid orbital models, as well as with the delocalized canonical molecular orbital (CMO) and density functional theory Kohn-Sham orbital (KSO) models. In all cases, the electron momentum probability distributions calculated with LMOs and localized hybrid orbital type models are inconsistent with the experimental observations. In contrast, those calculated with the delocalized CMOs and KSOs are in very good agreement with the experimental measurements. These findings are of importance in those research applications such as reactivity, drug and novel material design, and also in molecular electronics, where the shapes and orientations of particular valence (frontier) orbital electron density probability distributions (and not the total electron densities) are considered to be key determining factors. These findings and their implications are also of pedagogical significance in chemistry and molecular physics.
机译:标志性的基准氢化物分子CH4,NH 3和H2O中价值(前沿)电子的物理行为(Motions)的观察用于提供分子电子结构的杂交和局部和分层轨道模型的直接实验评价,自这些理论概念的初始建议以后超过80年。我们以前发表了通过电子动量光谱(EMS)的价动量概率分布的价值(边疆)电子动量概率分布的实验测量,与使用局部分子轨道(LMO)模型和一系列混合轨道模型以及一系列混合轨道模型进行比较划分的规范分子轨道(CMO)和密度泛函理论Kohn-Shamgital(KSO)模型。在所有情况下,用LMOS和局部混合轨道型模型计算的电子动量概率分布与实验观察不一致。相反,用临床化CMOS和KSO计算的那些与实验测量非常好。这些发现在这些研究应用中具有重要性,例如反应性,药物和新颖的材料设计,以及分子电子产品,其中特定价(前沿)轨道电子密度概率分布(而不是总电子密度)的形状和取向是被认为是关键决定因素。这些调查结果及其影响也是化学和分子物理学的教学意义。

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