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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Thermodynamic Studies of Ionic Hydration and Interactions for Amino Acid Ionic Liquids in Aqueous Solutions at 298.15 K
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Thermodynamic Studies of Ionic Hydration and Interactions for Amino Acid Ionic Liquids in Aqueous Solutions at 298.15 K

机译:298.15 K下水溶液中氨基酸离子液体的离子水化作用及其相互作用的热力学研究

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摘要

Amino acid ionic liquids are a special class of ionic liquids due to their unique acid-base behavior, biological significance, and applications in different fields such as templates in synthetic chemistry, stabilizers for biological macromolecules, etc. The physicochemical properties of these ionic liquids can easily be altered by making the different combinations of amino acids as anion along with possible cation modification which makes amino acid ionic liquids more suitable to understand the different kinds of molecular and ionic interactions with sufficient depth so that they can provide fruitful information for a molecular level understanding of more complicated biological processes. In this context, volumetric and osmotic coefficient measurements for aqueous solutions containing l-ethyl-3-methylimidazolium ([Emim]) based amino acid ionic liquids of glycine, alanine, valine, leucine, and isoleucine are reported at 298.15 K. From experimental osmotic coefficient data, mean molal activity coefficients of ionic liquids were estimated and analyzed using the Debye-Huckel and Pitzer models. The hydration numbers of ionic liquids in aqueous solutions were obtained using activity data. Pitzer ion interaction parameters are estimated and compared with other electrolytes reported in the literature. The nonelectrolyte contribution to the aqueous solutions containing ionic liquids was studied by calculating the osmotic second virial coefficient through an application of the McMillan-Mayer theory of solution. It has been found that the second osmotic virial coefficient which includes volume effects correlates linearly with the Pitzer ion interaction parameter estimated independently from osmotic data as well as the hydrophobicity of ionic liquids. The enthalpy-entropy compensation effect, explained using the Starikov-Norden model of enthalpy-entropy compensation, and partial molar entropy analysis for aqueous [Emim][GIy] solutions are made by using experimental Gibb's free energy data and literature enthalpy data. This study highlights that the hydrophobic interaction persists even in the limit of infinite dilution where the hydration effects are usually dominant, implying importance of hydrophobic hydration. Analysis of the results further shows that the hydration of amino acid ionic liquids occurs through the cooperative H-bond formation with the kosmotropic effect in contrast to the usual inorganic salts or hydrophobic salts like tetraalkylammonium halides.
机译:氨基酸离子液体由于其独特的酸碱行为,生物学意义以及在不同领域的应用(例如合成化学中的模板,生物大分子的稳定剂等)而成为一类特殊的离子液体。这些离子液体的物理化学性质可以通过使氨基酸作为阴离子的不同组合以及可能的阳离子修饰,可以轻松地进行更改,这使氨基酸离子液体更适合于以足够的深度理解不同种类的分子和离子相互作用,从而可以为分子水平提供丰富的信息了解更复杂的生物过程。在这种情况下,据报导,含甘氨酸,丙氨酸,缬氨酸,亮氨酸和异亮氨酸的基于I-乙基-3-甲基咪唑鎓([Emim])的氨基酸离子液体的水溶液的体积和渗透系数为298.15K。系数数据,使用Debye-Huckel和Pitzer模型估算和分析离子液体的平均摩尔活性系数。使用活性数据获得离子液体在水溶液中的水合数。估计皮策离子相互作用参数并将其与文献中报道的其他电解质进行比较。通过应用麦克米伦-梅耶溶液理论计算渗透第二维里系数,研究了非电解质对含离子液体水溶液的贡献。已经发现,包括体积效应的第二渗透病毒载量系数与独立于渗透数据以及离子液体的疏水性而估计的Pitzer离子相互作用参数线性相关。使用焓-熵补偿的Starikov-Norden模型解释了焓-熵补偿作用,并利用实验吉布的自由能数据和文献焓数据对[Emim] [GIy]水溶液进行了部分摩尔熵分析。这项研究表明,即使在无限稀释的极限条件下,疏水作用仍然持续存在,在这种情况下,水合效应通常占主导地位,这暗示了疏水水合的重要性。对结果的分析进一步表明,与通常的无机盐或疏水性盐(如卤化四烷基铵)相反,氨基酸离子液体的水合作用是通过具有协同作用的协同H键形成而发生的。

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