Ali Md Ahad, Susan Md Abu Bin Hasan
Department of Chemistry, University of Dhaka, Dhaka 1000, Bangladesh.
Department of Chemistry, Jashore University of Science and Technology, Jashore 7408, Bangladesh.
ACS Omega. 2023 Aug 30;8(36):32690-32700. doi: 10.1021/acsomega.3c03457. eCollection 2023 Sep 12.
In this study, volumetric properties of an ionic liquid, 1-ethyl-3-methylimidazolium ethylsulfate ([Cmim]CHSO), propane-1,2-diol, and their binary mixtures were studied by measurements of density and viscosity. The excess molar volume (), dynamic viscosity deviation (Δη), and excess molar Gibbs free energy of activation for viscous flow (Δ) were calculated and fitted with the Redlich-Kister (RK) type polynomial equation. The results suggested that intermolecular interactions are weaker in the mixture compared to the pure components and the interactions decrease with increasing mole fraction of [Cmim]CHSO. The thermodynamic activation parameters were also calculated from the Eyring equation, and their variations with mole fraction of [Cmim]CHSO were correlated to the molecular-level interactions. The near-infrared (NIR) spectroscopic measurements were carried out in the temperature range from 293.15 to 333.15 K. The raw NIR data were analyzed further by two-dimensional correlation spectroscopy and principal component analysis. When [Cmim]CHSO was introduced to the propane-1,2-diol system, the stronger intermolecular hydrogen bonds were destroyed. Propane-1,2-diol and [Cmim]CHSO produce some weaker hydrogen bonds, but the effect of breaking hydrogen bonds predominates. On the basis of volumetric and NIR spectroscopic investigations, molecular-level interactions are predicted. The interplay between intermolecular and intramolecular hydrogen bonding decides unique molecular-level interactions and dictates enhanced thermodynamic properties of the binary mixtures to make them tunable for a multitude of applications.
在本研究中,通过密度和粘度测量研究了离子液体1-乙基-3-甲基咪唑硫酸乙酯([Cmim]CHSO)、1,2-丙二醇及其二元混合物的体积性质。计算了过量摩尔体积()、动态粘度偏差(Δη)和粘性流动的过量摩尔吉布斯活化自由能(Δ),并将其拟合为Redlich-Kister(RK)型多项式方程。结果表明,与纯组分相比,混合物中的分子间相互作用较弱,且随着[Cmim]CHSO摩尔分数的增加,相互作用减弱。还根据Eyring方程计算了热力学活化参数,并将它们随[Cmim]CHSO摩尔分数的变化与分子水平的相互作用相关联。在293.15至333.15 K的温度范围内进行了近红外(NIR)光谱测量。通过二维相关光谱和主成分分析对原始近红外数据进行了进一步分析。当将[Cmim]CHSO引入1,2-丙二醇体系时,较强的分子间氢键被破坏。1,2-丙二醇和[Cmim]CHSO形成了一些较弱的氢键,但氢键断裂的影响占主导。基于体积和近红外光谱研究,预测了分子水平的相互作用。分子间和分子内氢键之间的相互作用决定了独特的分子水平相互作用,并决定了二元混合物增强的热力学性质,使其可用于多种应用的调节。