光谱低频区液态烯类及其卤代烯类中的光拉曼散射研究

G. Melnikov, N. M. Ignatenko, L. Petrova, A. Gromkov, O. Manzhos
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引用次数: 0

摘要

目的。考虑到液体结构中的聚类过程,研究光谱低频范围内液体场及其卤化场中的光拉曼散射。使用了拉曼光谱方法以及使用液体结构聚类表示的建模方法。在室温(23°C)下使用 LabRAM HR Evolution 光谱仪获得了 17 至 500 cm-1 低频范围内的拉曼光谱。对有关苯的二聚构型特性以及物质中的聚类过程对其红外光谱和拉曼光谱的影响的理论和实验工作进行了分析。获得了液苯、邻二甲苯、乙苯、氟苯、氯苯、溴苯、甲苯、邻氟甲苯、间氟甲苯、对氟甲苯、邻氯甲苯、间氯甲苯、对氯甲苯、2,4-二氯甲苯、2,6-二氯甲苯的低频拉曼光谱。测试了聚类形成和解体的模型。根据团簇结构中包含的粒子数量,得到了估计团簇结构中 ωmin 二聚体形成的最小振荡频率和拉曼光谱低频区光谱带最大值位置的公式。在总误差范围内,ωmin 得出的理论结果与实验数据的一致性令人满意。其他光谱带的存在显然与团簇结构中的多粒子相互作用有关,需要进一步研究。根据所提出的团簇形成和衰减模型及其相关关系,我们可以根据已知的形成焓值和二聚体惯性矩,估算出液态烯烃及其卤代烯烃拉曼光谱低频范围内的最小频率值。相反,利用已知的最低频率值,可以估算出二聚体的形成焓和惯性矩,而无需进行复杂的量子力学计算。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Study of Raman Scattering of Light in Liquid Arenes and Their Halogen-Substituted ones in the Low-Frequency Region of the Spectrum
Purpose. Investigation of Raman scattering of light in liquid arenas and their halogenated ones in the low-frequency range of the spectrum, taking into account the clustering processes in their structure.Methods. Raman spectroscopy methods were used, as well as a modeling method using cluster representations of the structure of liquids. Raman spectra of light in the low-frequency range from 17 to 500 cm–1 were obtained using a LabRAM HR Evolution spectrometer at room temperature (23°C).Results. The analysis of theoretical and experimental work on the properties of dimeric configurations of benzene and on the effect of clustering processes in substances on their IR and Raman spectra is carried out. Low-frequency Raman spectra of liquid benzene, o-xylene, ethylbenzene, fluorobenzene, chlorobenzene, brombenzene, toluene, o-fluorotoluene, m-fluorotoluene, p-fluorotoluene, o-chlorotoluene, m-chlorotoluene, p-chlorotoluene, 2,4-dichlorotoluene, 2,6-dichlorotoluene were obtained. The model of formation and disintegration of cluster formations has been tested. Formulas have been obtained for estimating the minimum frequency of libration oscillations of the ωmin dimer formation in the cluster structure and the position of the maxima of spectral bands in the low-frequency region of the Raman spectrum, depending on the number of particles included in the cluster formations. The theoretical results obtained by ωmin are in satisfactory agreement with the experimental data within the total error.The proposed model makes it possible to predict the position of some spectral bands of the Raman spectrum. The presence of other spectral bands is obviously related to the multiparticle interaction in the cluster structure and requires additional research.Conclusion. The proposed model of formation and decay of cluster formations and the relations following from it allow us to estimate the value of the minimum frequency in the low-frequency range of the Raman spectrum of liquid arenes and their halogenated ones from the known values of the enthalpy of formation and the moment of inertia of the dimer. Conversely, using known values of the minimum frequency, the values of the enthalpy of formation and the moment of inertia of the dimer can be estimated without resorting to complex quantum mechanical calculations.
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