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What is the fundamental ion-specific series for anions and cations? Ion specificity in standard partial molar volumes of electrolytes and electrostriction in water and non-aqueous solvents

机译:阴离子和阳离子的基本离子特定系列是什么?电解质的标准局部摩尔体积中的离子特异性以及在水和非水溶剂中的电致伸缩

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摘要

The importance of electrolyte solutions cannot be overstated. Beyond the ionic strength of electrolyte solutions the specific nature of the ions present is vital in controlling a host of properties. Therefore ion specificity is fundamentally important in physical chemistry, engineering and biology. The observation that the strengths of the effect of ions often follows well established series suggests that a single predictive and quantitative description of specific-ion effects covering a wide range of systems is possible. Such a theory would revolutionise applications of physical chemistry from polymer precipitation to drug design. Current approaches to understanding specific-ion effects involve consideration of the ions themselves, the solvent and relevant interfaces and the interactions between them. Here we investigate the specific-ion effects trends of standard partial molar volumes and electrostrictive volumes of electrolytes in water and eleven non-aqueous solvents. We choose these measures as they relate to bulk properties at infinite dilution, therefore they are the simplest electrolyte systems. This is done to test the hypothesis that the ions alone exhibit a specific-ion effect series that is independent of the solvent and unrelated to surface properties. The specific-ion effects trends of standard partial molar volumes and normalised electrostrictive volumes examined in this work show a fundamental ion-specific series that is reproduced across the solvents, which is the Hofmeister series for anions and the reverse lyotropic series for cations, supporting the hypothesis. This outcome is important in demonstrating that ion specificity is observed at infinite dilution and demonstrates that the complexity observed in the manifestation of specific-ion effects in a very wide range of systems is due to perturbations of solvent, surfaces and concentration on the underlying fundamental series. This knowledge will guide a general understanding of specific-ion effects and assist in the development of a quantitative predictive theory of ion specificity.
机译:电解质溶液的重要性不可高估。除了电解质溶液的离子强度外,存在的离子的特定性质对于控制许多特性也至关重要。因此,离子特异性在物理化学,工程和生物学中至关重要。离子作用强度通常遵循公认的序列的观察结果表明,对涵盖广泛系统的特定离子作用进行单个预测和定量描述是可能的。这样的理论将彻底改变物理化学的应用,从聚合物沉淀到药物设计。当前了解特定离子效应的方法包括考虑离子本身,溶剂和相关界面以及它们之间的相互作用。在这里,我们研究了标准的部分摩尔体积和水和11种非水溶剂中电解质的电致伸缩体积的比离子效应趋势。我们选择这些措施是因为它们与无限稀释时的体积特性有关,因此它们是最简单的电解质系统。这样做是为了检验以下假设:离子单独显示出特定离子效应系列,该系列离子效应与溶剂无关,并且与表面特性无关。在这项工作中检查的标准偏摩尔体积和归一化电致伸缩体积的比离子效应趋势显示了在整个溶剂中重现的基本离子特异性系列,即阴离子的Hofmeister系列和阳离子的反溶致系列,支持了假设。该结果对于证明在无限稀释下观察到离子特异性非常重要,并表明在很宽范围的系统中以特定离子效应表现出的复杂性是由于溶剂,表面和基础基本序列浓度的扰动引起的。这些知识将指导对离子特异性效应的一般理解,并有助于离子特异性定量预测理论的发展。

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