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Mutual Solubilities of Water and the [Cnmim][Tf2N] Hydrophobic Ionic Liquids

机译:水和[Cnmim] [Tf2N]疏水离子液体的互溶性

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摘要

Ionic liquids (ILs) have recently garnered increased attention because of their potential environmental benefits as "green" replacements over conventional volatile organic solvents. While ILs cannot significantly volatilize and contribute to air pollution, even the most hydrophobic ones present some miscibility with water posing environmental risks to the aquatic ecosystems. Thus, the knowledge of ILs toxicity and their water solubility must be assessed before an accurate judgment of their environmental benefits and prior to their industrial applications. In this work, the mutual solubilities for [C2-C8mim][Tf2N] (n-alkyl-3-methylimidazolium bis(trifluoromethylsulfonyl)imide) and water between 288.15 and 318.15 K at atmospheric pressure were measured. Although these are among the most hydrophobic ionic liquids known, the solubility of water in these compounds is surprisingly large, ranging from 0.17 to 0.36 in mole fraction, while the solubility of these ILs in water is much lower ranging from 3.2 × 10-5 to 1.1 × 10-3 in mole fraction, in the temperature and pressure conditions studied. From the experimental data, the molar thermodynamic functions of solution and solvation such as Gibbs energy, enthalpy, and entropy at infinite dilution were estimated, showing that the solubility of these ILs in water is entropically driven. The predictive capability of COSMO-RS, a model based on unimolecular quantum chemistry calculations, was evaluated for the description of the binary systems investigated providing an acceptable agreement between the model predictions and the experimental data both with the temperature dependence and with the ILs structural variations.
机译:离子液体(IL)最近获得了越来越多的关注,因为它们具有潜在的环境效益,可以替代传统的挥发性有机溶剂,成为“绿色”替代品。尽管IL不能显着挥发并造成空气污染,但即使疏水性最强的IL也能与水混溶,对水生生态系统构成环境风险。因此,必须在准确判断IL的环境效益之前和工业应用之前评估IL的毒性及其水溶性的知识。在这项工作中,在大气压力下测量了[C2-C8mim] [Tf2N](正烷基-3-甲基咪唑双(三氟甲基磺酰基)酰亚胺)与水的互溶性。尽管这些是已知的疏水性最强的离子液体,但水在这些化合物中的溶解度出乎意料的大,摩尔分数范围为0.17至0.36,而这些IL在水中的溶解度则低得多,范围为3.2×10-5在研究的温度和压力条件下,摩尔分数为1.1×10-3。根据实验数据,可以估算溶液和溶剂化物的摩尔热力学函数,例如无限稀释时的吉布斯能量,焓和熵,表明这些ILs在水中的溶解度是受熵驱动的。对基于单分子量子化学计算的模型COSMO-RS的预测能力进行了评估,以描述所研究的二元系统,从而在模型预测和实验数据之间均具有可接受的一致性,且具有温度依赖性和ILs结构变化。

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