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傅里叶变换红外光谱和分散气相绝对红外强度的烃基基本带。

FTIR and dispersive gas phase absolute infrared intensities of hydrocarbon fundamental bands.

机构信息

Instituto de Química, Universidade Estadual de Campinas,, Campinas CEP 13.083-970, SP, Brazil.

Instituto de Química, Universidade Estadual de Campinas,, Campinas CEP 13.083-970, SP, Brazil.

出版信息

Spectrochim Acta A Mol Biomol Spectrosc. 2019 May 5;214:1-6. doi: 10.1016/j.saa.2019.01.072. Epub 2019 Jan 25.

Abstract

New experimental intensity results obtained by band integration from the PNNL (Pacific Northwest National Laboratory) spectral library are reported for 26 CH vibrations of methane, acetylene, ethylene, ethane, allene, propyne and cyclopropane. The PNNL intensity values range from 3.1 to 185.4 km mol and are in excellent agreement, rms difference of 3.1 km mol, with earlier low resolution intensity results. QCISD/6-311++G(3d,3p) and QCISD/cc-pVTZ theoretical results are in good agreement with the PNNL intensity values with rms differences of 4.4 and 4.9 km mol, respectively. Charge-charge transfer-dipolar polarization model parameters at both quantum levels indicate that the charge transfer-dipolar polarization contributions to the intensities are much larger than those owing to the movements of static equilibrium charges on hydrogen for these vibrations except for the CH vibrations of acetylene that is known to contain very acidic hydrogen atoms. The main effect of the static charge movement comes from its interaction with charge transfer-dipolar polarization owing to the relatively large parameter values of this dynamic electronic contribution. The sum of the charge transfer-dipolar polarization parameters with their interaction with the charge accurately describes the variations in the intensity values of these hydrocarbon vibrations.

摘要

报告了通过从 PNNL(太平洋西北国家实验室)光谱库中的带积分获得的 26 个甲烷、乙炔、乙烯、乙烷、丙二烯、丙炔和环丙烷的 CH 振动的新实验强度结果。PNNL 强度值范围为 3.1 到 185.4 km mol,与早期的低分辨率强度结果非常吻合,均方根差为 3.1 km mol。QCISD/6-311++G(3d,3p) 和 QCISD/cc-pVTZ 理论结果与 PNNL 强度值非常吻合,均方根差分别为 4.4 和 4.9 km mol。在这两个量子水平上的电荷-电荷转移-偶极极化模型参数表明,对于这些振动,除了已知含有非常酸性氢原子的乙炔的 CH 振动外,电荷转移-偶极极化对强度的贡献远大于由于氢上静态平衡电荷的运动引起的贡献。静态电荷运动的主要影响来自于它与电荷转移-偶极极化的相互作用,因为这种动态电子贡献的参数值相对较大。这些碳氢化合物振动的强度值的变化可以通过将电荷转移-偶极极化参数与其相互作用的总和准确地描述。

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