Department of Chemical Engineering, Indian Institute of Technology Guwahati, Guwahati 781039, Assam, India.
J Phys Chem B. 2022 Jul 7;126(26):4925-4938. doi: 10.1021/acs.jpcb.2c01735. Epub 2022 Jun 28.
Deep eutectic solvents (DESs) are developing as an alternate medium for aromatic extraction, especially benzene and thiophene from aliphatic hydrocarbon mixtures. In this work, molecular dynamics (MD) simulations were first used to investigate the solvation structure of benzene, thiophene, and -hexane in monoethanolamine-based DESs. It reveals the liquid structures in the adjacent neighbor shells, which is a function of electron-withdrawing sulfur attached to thiophene and the π-electron cloud of benzene. The intermolecular forces between aromatic, aliphatic, and DES components are analyzed in van der Waals and hydrogen bond interactions. The chloride ions serve as a charge carrier bridge between choline and monoethanolamine precursors. The solvation of benzene, thiophene, and -hexane in the DESs depends on volume expansion and minor solvent structural changes. Density functional theory results provided information on the mechanism of short-range interactions between organic solutes and studied DES. It aids in understanding the structural orientations of a DES with the addition of solutes, essential to the formation of DES. The solvation shell structure and characteristics were investigated in tandem with the possibility of benzene and thiophene clustering. The H NMR and 2D H-H-NOESY were used to investigate the intermolecular interactions between benzene, thiophene, and -hexane with monoethanolamine-based solvents. It concludes that high-ordered DES1 is more inclined to higher solubility than lower-ordered ones with a higher molar ratio of monoethanolamine. The solvation was reduced because the entropy gain was not maximized in the lower ordered DESs.
深共熔溶剂(DESs)作为芳香族萃取的替代介质正在发展,特别是从脂肪族烃混合物中萃取苯和噻吩。在这项工作中,首先使用分子动力学(MD)模拟研究了单乙醇胺基 DESs 中苯、噻吩和正己烷的溶剂化结构。它揭示了相邻邻域壳层中的液体结构,这是噻吩上的吸电子硫和苯的π电子云的函数。分析了芳香族、脂肪族和 DES 成分之间的范德华力和氢键相互作用。氯离子作为胆碱和单乙醇胺前体之间的电荷载体桥。苯、噻吩和正己烷在 DESs 中的溶剂化取决于体积膨胀和少量溶剂结构变化。密度泛函理论结果提供了有关有机溶质与研究 DES 之间短程相互作用机制的信息。它有助于理解在添加溶质时 DES 的结构取向,这对于 DES 的形成至关重要。与苯和噻吩可能聚集的情况一起研究了溶剂化壳层结构和特性。使用 1 H NMR 和 2D H-H-NOESY 研究了苯、噻吩和正己烷与单乙醇胺基溶剂之间的分子间相互作用。结果表明,具有较高摩尔比的单乙醇胺的高阶 DES1 比低阶 DESs 更倾向于更高的溶解度。由于在低阶 DESs 中熵增益没有最大化,因此溶剂化作用降低。