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ELECTRONEGATIVITY MODELS FOR THE INFRARED VIBRATIONAL INTENSITIES OF THE HALOMETHANES

机译:卤代烷的红外振动强度的电电模型

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Ab initio molecular orbital calculations and empirical electronegativity models are used to understand the linear electronegativity relationships observed for the carbon mean dipole moment derivatives and atomic effective charges calculated from the experimental infrared vibrational intensities of the halomethanes. The charge-charge flux-overlap interpretation of the molecular orbital results shows that only the charge contribution is important in explaining the variations in these parameters for the fluoromethanes. For this reason a simple electrostatic model is sufficient to explain their fundamental infrared intensity sums. The mean dipole moment derivative values determined from the experimental intensities suggest the absence of a saturation effect on the ability of substituted fluorine atoms to drain electron density from the carbon atoms. A similar model has been used by others to explain the increasing thermodynamic stabilities of the fluoromethanes with increasing fluorine substitution. In contrast intramolecular charge transfer is predominant in determining the chloromethane intensities. The fluorochloromethane intensities can only be explained using models combining characteristics of the fluoro- and chloromethane models. The charge equilibration procedure introduced recently in the literature is found to be significantly superior to the simpler electronegativity equalization method for calculating atomic charges for the prediction of the infrared intensity sums of the halomethanes. [References: 46]
机译:从头算分子轨道计算和经验电负性模型用于了解从卤代甲烷的实验红外振动强度计算得出的碳平均偶极矩导数和原子有效电荷所观察到的线性电负性关系。分子轨道结果的电荷-电荷通量重叠解释表明,只有电荷贡献对解释这些氟代甲烷参数的变化很重要。因此,一个简单的静电模型足以解释其基本的红外强度总和。由实验强度确定的平均偶极矩导数值表明,对取代的氟原子从碳原子中耗尽电子密度的能力没有饱和作用。其他人也使用了类似的模型来解释氟代甲烷随着氟取代度的增加而增加的热力学稳定性。相反,分子内电荷转移在确定氯甲烷强度中占主导地位。只能使用结合了氟甲烷模型和氯甲烷模型特性的模型来解释氟氯甲烷强度。发现最近在文献中引入的电荷平衡程序明显优于用于计算原子电荷以预测卤代甲烷的红外强度总和的较简单的电负性均衡方法。 [参考:46]

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