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Influence of Hydroxyl Group Position and Temperature on Thermophysical Properties of Tetraalkylammonium Hydroxide Ionic Liquids with Alcohols

机译:羟基位置和温度对含醇四烷基氢氧化铵离子液体热物理性质的影响

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摘要

In this work, we have explored the thermophysical properties of tetraalkylammonium hydroxide ionic liquids (ILs) such as tetrapropylammonium hydroxide (TPAH) and tetrabutylammonium hydroxide (TBAH) with isomers of butanol (1-butanol, 2-butanol and 2-methyl-2-propanol) within the temperature range 293.15–313.15 K, with interval of 5 K and over the varied concentration range of ILs. The molecular interactions between ILs and butanol isomers are essential for understanding the function of ILs in related measures and excess functions are sensitive probe for the molecular interactions. Therefore, we calculated the excess molar volume (VE) and the deviation in isentropic compressibility (Δκs) using the experimental values such as densities (ρ) and ultrasonic sound velocities (u) that are measured over the whole compositions range at five different temperatures (293.15, 298.15, 303.15, 308.15 and 313.15 K) and atmospheric pressure. These excess functions were adequately correlated by using the Redlich–Kister polynomial equation. It was observed that for all studied systems, the VE and Δκs values are negative for the whole composition range at 293.15 K. And, the excess function follows the sequence: 2-butanol>1-butanol>2-methyl-2-propanol, which reveals that (primary or secondary or tertiary) position of hydroxyl group influence the magnitude of interactions with ILs. The negative values of excess functions are contributions from the ion-dipole interaction, hydrogen bonding and packing efficiency between the ILs and butanol isomers. Hence, the position of hydroxyl group plays an important role in the interactions with ILs. The hydrogen bonding features between ILs and alcohols were analysed using molecular modelling program by using HyperChem 7.
机译:在这项工作中,我们探索了四烷基氢氧化铵离子液体(ILs)的热物理性质,例如四丙基氢氧化铵(TPAH)和四丁基氢氧化铵(TBAH)与丁醇的异构体(1-丁醇,2-丁醇和2-甲基-2-丙醇)在293.15–313.15 K的温度范围内,间隔为5 K,并且在不同的ILs浓度范围内。 IL与丁醇异构体之间的分子相互作用对于理解IL在相关措施中的功能是必不可少的,而过量的功能是分子相互作用的敏感探针。因此,我们使用实验值如密度(ρ)和超声波速度(u)来计算多余的摩尔体积(V E )和等熵压缩率的偏差(Δκs)。整个组合物的温度范围为五个不同的温度(293.15、298.15、303.15、308.15和313.15 K)和大气压。通过使用Redlich-Kister多项式方程,这些多余函数得到了充分的相关。观察到,对于所有研究的系统,V E 和Δκs值在293.15 K的整个组成范围内均为负。而且,过量功能遵循以下顺序:2-丁醇> 1-丁醇> 2-甲基-2-丙醇,揭示羟基的(伯,仲或叔)位置会影响与IL相互作用的程度。多余功能的负值是离子与偶极相互作用,氢键和IL和丁醇异构体之间的填充效率的贡献。因此,羟基的位置在与IL的相互作用中起重要作用。使用HyperChem 7使用分子建模程序分析了IL和醇之间的氢键特征。

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