探索桉叶油醇和 1-烷醇混合物的结构-性质关系:DFT 和实验研究

IF 2.5 4区 工程技术 Q3 CHEMISTRY, PHYSICAL International Journal of Thermophysics Pub Date : 2024-07-30 DOI:10.1007/s10765-024-03414-3
Mohammad Almasi, Razieh Sadat Neyband
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引用次数: 0

摘要

本研究采用实验和理论相结合的方法,研究了桉叶油醇(EC)与一系列 1-烷醇(从 1-己醇到 1-壬醇)混合后在 293.15-323.15 K 温度范围内的热物理性质。密度泛函理论(DFT)在 M05-2x/6-31g(d,p) 理论水平上的计算被用来优化 EC + 1-烷醇的几何形状,并深入了解分子间的氢键相互作用。DFT 结果揭示了 1- 烷醇中烷基链的长度对与 EC 的氢键作用的重要影响,几何、拓扑性质、振动频率、核磁共振和分子轨道分析都支持这一结果。密度和粘度的实验测量结果表明,过量摩尔体积和粘度与理想状态存在负偏差,从而对理论研究结果进行了补充。这项研究凸显了 DFT 方法在阐明支配复杂二元体系热物理性质的分子级相互作用方面的威力。此外,DFT 结果还提供了对所观察到的热物理行为的分子级理解,有助于开发更精确的预测模型。本研究将实验和理论方法相结合,为研究复杂混合物的性质提供了一个强大的框架。
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Exploring Structure–Property Relationships in Eucalyptol and 1-Alkanol Mixtures: A DFT and Experimental Study

This study employs a combined experimental and theoretical approach to investigate the thermophysical properties of eucalyptol (EC) blended with a series of 1-alkanols (ranging from 1-hexanol to 1-nonanol) across a temperature spectrum of 293.15–323.15 K. Density Functional Theory (DFT) calculations at the M05-2x/6-31g(d,p) level of theory are used to optimize the geometry of EC + 1-alkanols and provide insights into the hydrogen bonding interactions between the molecules. The DFT results reveal the significance of alkyl chain length in 1-alkanols on the hydrogen bonding with EC, which is supported by the analysis of geometrical, topological properties, vibrational frequency, NMR, and molecular orbital analysis. The theoretical findings are complemented by experimental measurements of density and viscosity, which show negative deviations from ideality in excess molar volume and viscosity. This study highlights the power of DFT methods in elucidating the molecular-level interactions governing the thermophysical properties of complex binary systems. Furthermore, the DFT results provide a molecular-level understanding of the observed thermophysical behavior, allowing for the development of more accurate predictive models. The integration of experimental and theoretical approaches in this study demonstrates a powerful framework for investigating the properties of complex mixtures.

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来源期刊
CiteScore
4.10
自引率
9.10%
发文量
179
审稿时长
5 months
期刊介绍: International Journal of Thermophysics serves as an international medium for the publication of papers in thermophysics, assisting both generators and users of thermophysical properties data. This distinguished journal publishes both experimental and theoretical papers on thermophysical properties of matter in the liquid, gaseous, and solid states (including soft matter, biofluids, and nano- and bio-materials), on instrumentation and techniques leading to their measurement, and on computer studies of model and related systems. Studies in all ranges of temperature, pressure, wavelength, and other relevant variables are included.
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