通过电极/膜/溶液系统的电流通道。第二部分:稳态扩散-迁移电流。三元电解质

IF 0.8 4区 工程技术 Q4 ELECTROCHEMISTRY
M. A. Vorotyntsev, P. A. Zader
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引用次数: 0

摘要

最近提出了一种实验测定膜内电离子扩散系数及其在膜/溶液界面处分布系数的表达方法。J.电化学。, 2022, vol. 58, p. 1103)是基于对电极/膜/电解质溶液系统中测量的非平稳电流的比较,在应用电位步长与电流时间依赖性的理论表达式时,包括稳态状态。在以前的出版物中,将该方法应用于溴化物阴离子跨膜运输的研究是在非电活性反离子的膜选择性渗透性(permselectivity)条件下进行的,其中其内部的电场强度已被其高浓度抑制。在这种条件下,膜内浓度低得多的电活性共离子(溴化物阴离子)通过纯粹的扩散机制进行运动,对此已有分析解决方案。当膜内的电活性共离子和支持电解质的反离子浓度相当时,它们的运输是由扩散和迁移共同贡献的。特别是,这种情况发生在单价离子三元体系中,当支持电解质M+和a -的离子以及电活性阴离子X -从外部溶液穿透膜时,它们在膜内的浓度似乎相当。在这项工作中,我们导出了所有离子组分浓度的稳态分布的解析表达式,以及膜内电场的解析表达式,作为通过的固定电流振幅和体溶液中离子浓度的函数,以及扩散-迁移限制电流密度。特别是,研究表明,当膜/电解质溶液界面处的共离子浓度较低时[与膜上固定带电基团的浓度相比:Xm \( \ll \) min (Cf, Mm)],对电活性离子通量的迁移贡献可以忽略不计。基于这个原因,本文所导出的三元电解质的公式可以近似地简化为纯扩散输运的相应表达式。如果满足相反的条件(Xm/Cf \( \gg \) 1),则迁移对离子通量的贡献导致对扩散迁移限制电流表达式的修改。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

The Current Passage Across an Electrode/Membrane/Solution System. Part 2: Steady-State Diffusion–Migration Current. Ternary Electrolyte

The Current Passage Across an Electrode/Membrane/Solution System. Part 2: Steady-State Diffusion–Migration Current. Ternary Electrolyte

A recently proposed express method for experimental determination of diffusion coefficients of electrotive ions inside a membrane and their distribution coefficients at the membrane/solution interface (Russ. J. Electrochem., 2022, vol. 58, p. 1103) is based on the comparing of a measured non-stationary current across the electrode/membrane/electrolyte solution system upon applying a potential step with theoretical expressions for the time dependence of the current, the steady-state regime being included. In previous publications, the application of this method to the studies of the bromide anion transport across membrane is carried out under conditions of the membrane selective permeability (permselectivity) for non-electroactive counter-ions where the electrical field intensity inside it has been suppressed by their high concentration. Under this condition, the movement of electroactive co-ions (bromide anions), having a much lower concentration inside the membrane, takes place via the purely diffusion mechanism, for which analytical solutions have been available. When the concentrations of electroactive co-ions and supporting-electrolyte counter-ions inside the membrane are comparable, their transport is contributed by both diffusion and migration. In particular, such a situation takes place in a ternary system of monovalent ions where both ions of the supporting electrolyte M+ and A, as well as the electroactive anion X, penetrate the membrane from the external solution, their concentrations inside the membrane appeared being comparable. In this work, we derived analytical expressions for the steady-state distributions of the concentrations of all ionic components, as well as of the electrical field, inside the membrane as a function of the amplitude of the passing stationary current and of the ion concentrations in the bulk solution, as well as for the diffusion–migration limiting current density. In particular, it is shown that at a low concentration of co-ions at the membrane/electrolyte solution interface [compared to the concentration of fixed charged groups of the membrane: Xm \( \ll \) min (Cf, Mm)], the migration contribution into the flux of electroactive ions can be neglected. On this reason, the formulas derived in this work for the ternary electrolyte are reduced approximately to the corresponding expressions for the pure diffusional transport. If the opposite condition is fulfilled (Xm/Cf \( \gg \) 1), the migration contributions into the ion fluxes lead to a modification of the expression for the diffusion–migration limiting current.

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来源期刊
Russian Journal of Electrochemistry
Russian Journal of Electrochemistry 工程技术-电化学
CiteScore
1.90
自引率
8.30%
发文量
102
审稿时长
6 months
期刊介绍: Russian Journal of Electrochemistry is a journal that covers all aspects of research in modern electrochemistry. The journal welcomes submissions in English or Russian regardless of country and nationality of authors.
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