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多孔介质中超限电流和冲击电渗析。

Overlimiting current and shock electrodialysis in porous media.

机构信息

Department of Chemical Engineering and ‡Department of Mathematics, Massachusetts Institute of Technology , Cambridge, Massachusetts 02139 United States.

出版信息

Langmuir. 2013 Dec 31;29(52):16167-77. doi: 10.1021/la4040547. Epub 2013 Dec 18.

Abstract

Most electrochemical processes, such as electrodialysis, are limited by diffusion, but in porous media, surface conduction and electroosmotic flow also contribute to ionic flux. In this article, we report experimental evidence for surface-driven overlimiting current (faster than diffusion) and deionization shocks (propagating salt removal) in a porous medium. The apparatus consists of a silica glass frit (1 mm thick with a 500 nm mean pore size) in an aqueous electrolyte (CuSO4 or AgNO3) passing ionic current from a reservoir to a cation-selective membrane (Nafion). The current-voltage relation of the whole system is consistent with a proposed theory based on the electroosmotic flow mechanism over a broad range of reservoir salt concentrations (0.1 mM to 1.0 M) after accounting for (Cu) electrode polarization and pH-regulated silica charge. Above the limiting current, deionized water (≈10 μM) can be continuously extracted from the frit, which implies the existence of a stable shock propagating against the flow, bordering a depleted region that extends more than 0.5 mm across the outlet. The results suggest the feasibility of shock electrodialysis as a new approach to water desalination and other electrochemical separations.

摘要

大多数电化学过程,如电渗析,都受到扩散的限制,但在多孔介质中,表面传导和电渗流也有助于离子通量。本文报道了在多孔介质中表面驱动的过限电流(比扩散快)和去离子激波(传播盐去除)的实验证据。该装置由一个在水基电解质(CuSO4 或 AgNO3)中的二氧化硅玻璃滤片(厚 1 毫米,平均孔径为 500nm)组成,离子电流从储液器流向阳离子选择性膜(Nafion)。整个系统的电流-电压关系与基于电渗流机制的理论一致,该理论在考虑(Cu)电极极化和 pH 调节的硅电荷后,在广泛的储层盐浓度(0.1mM 至 1.0M)范围内具有广泛的适用性。在极限电流以上,可以从滤片中连续提取去离子水(约 10μM),这意味着存在稳定的激波,它沿一个贫化区传播,该贫化区在出口处延伸超过 0.5 毫米。结果表明,激波电渗析作为一种新的海水淡化和其他电化学分离方法是可行的。

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