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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Probing molecular interaction in ionic liquids by low frequency spectroscopy: Coulomb energy, hydrogen bonding and dispersion forces
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Probing molecular interaction in ionic liquids by low frequency spectroscopy: Coulomb energy, hydrogen bonding and dispersion forces

机译:通过低频光谱法研究离子液体中的分子相互作用:库仑能,氢键和分散力

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摘要

Ionic liquids are defined as salts composed solely of ions with melting points below 100 °C. These remarkable liquids have unique and fascinating properties and offer new opportunities for science and technology. New combinations of ions provide changing physical properties and thus novel potential applications for this class of liquid materials. To a large extent, the structure and properties of ionic liquids are determined by the intermolecular interaction between anions and cations. In this perspective we show that far infrared and terahertz spectroscopy are suitable methods for studying the cation-anion interaction in these Coulomb fluids. The interpretation of the measured low frequency spectra is supported by density functional theory calculations and molecular dynamics simulations. We present results for selected aprotic and protic ionic liquids and their mixtures with molecular solvents. In particular, we focus on the strength and type of intermolecular interaction and how both parameters are influenced by the character of the ions and their combinations. We show that the total interaction between cations and anions is a result of a subtle balance between Coulomb forces, hydrogen bonds and dispersion forces. For protic ionic liquids we could measure distinct vibrational modes in the low frequency spectra indicating clearly the cation-anion interaction characterized by linear and medium to strong hydrogen bonds. Using isotopic substitution we have been able to dissect frequency shifts related to pure interaction strength between cations and anions and to different reduced masses only. In this context we also show how these different types of interaction may influence the physical properties of ionic liquids such as the melting point, viscosity or enthalpy of vaporization. Furthermore we demonstrate that low frequency spectroscopy can also be used for studying ion speciation. Low vibrational features can be assigned to contact ion pairs and solvent separated ion pairs. In conclusion we showed how detailed knowledge of the low frequency spectra can be used to understand the change in interaction strength and structure by variation of temperature, solvent polarity and solvent concentration in ionic liquids and their mixtures with molecular solvents. In principle the used combination of methods is suitable for studying intermolecular interaction in pure molecular liquids and their solutions including additive materials such as nanoparticles.
机译:离子液体定义为仅由熔点低于100°C的离子组成的盐。这些卓越的液体具有独特而引人入胜的特性,并为科学和技术提供了新的机会。离子的新组合提供了不断变化的物理特性,从而为此类液体材料提供了新颖的潜在应用。离子液体的结构和性质在很大程度上取决于阴离子和阳离子之间的分子间相互作用。从这个角度来看,我们表明远红外和太赫兹光谱是研究这些库仑流体中阳离子与阴离子相互作用的合适方法。密度泛函理论计算和分子动力学模拟支持对测得的低频频谱的解释。我们介绍了选定的非质子和质子离子液体及其与分子溶剂的混合物的结果。特别是,我们关注分子间相互作用的强度和类型,以及两个参数如何受离子及其组合的特性影响。我们表明,阳离子和阴离子之间的总相互作用是库仑力,氢键和分散力之间微妙平衡的结果。对于质子离子液体,我们可以在低频频谱中测量不同的振动模式,从而清楚地表明阳离子-阴离子相互作用具有线性和中等至强氢键的特征。使用同位素取代,我们已经能够剖析与阳离子和阴离子之间的纯相互作用强度以及仅与不同的减少质量有关的频移。在这种情况下,我们还显示了这些不同类型的相互作用如何影响离子液体的物理性质,例如熔点,粘度或汽化焓。此外,我们证明了低频光谱学也可以用于研究离子形态。低振动特性可分配给接触离子对和溶剂分离的离子对。总而言之,我们展示了如何利用低频光谱的详细知识来了解离子液体及其与分子溶剂的混合物中温度,溶剂极性和溶剂浓度的变化对相互作用强度和结构的影响。原则上,所使用的方法组合适用于研究纯分子液体及其溶液(包括添加材料,例如纳米颗粒)中的分子间相互作用。

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