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用氯化钠和氯化钾溶液对不对称纳滤膜进行电化学表征:膜不对称性对传输参数的影响。

Electrochemical characterization of an asymmetric nanofiltration membrane with NaCl and KCl solutions: influence of membrane asymmetry on transport parameters.

作者信息

Cañas A, Benavente J

机构信息

Grupo de Caracterización Electrocinética y de Transporte en Membranas e Interfases, Departamento de Física Aplicada, Facultad de Ciencias, Universidad de Málaga, E-29071 Málaga, Spain.

出版信息

J Colloid Interface Sci. 2002 Feb 15;246(2):328-34. doi: 10.1006/jcis.2001.8080.

Abstract

Electrochemical characterization of a nanofiltration asymmetric membrane was carried out by measuring membrane potential, salt diffusion, and electrical parameters (membrane electrical resistance and capacitance) with the membrane in contact with NaCl and KCl solutions at different concentrations (10(-3)< or =c(M)< or =5 x 10(-2)). From these experiments characteristic parameters such as the effective concentration of charge in the membrane, ionic transport numbers, and salt and ionic permeabilities across the membrane were determined. Membrane electrical resistance and capacitance were obtained from impedance spectroscopy (IS) measurements by using equivalent circuits as models. This technique allows the determination of the electrical contribution associated with each sublayer; then, assuming that the dense sublayer behaves as a plane capacitor, its thickness can be estimated from the capacitance value. The influence of membrane asymmetry on transport parameters have been studied by carrying out measurements for the two opposite external conditions. Results show that membrane asymmetry strongly affects membrane potential, which is attributed to the Donnan exclusion when the solutions in contact with the dense layer have concentrations lower than the membrane fixed charge (X(ef) approximately -0.004 M), but for the reversal experimental condition (high concentration in contact with the membrane dense sublayer) the membrane potential is practically similar to the solution diffusion potential. The comparison of results obtained for both electrolytes agrees with the higher conductivity of KCl solutions. On the other hand, the influence of diffusion layers at the membrane/solution interfaces in salt permeation was also studied by measuring salt diffusion at a given NaCl concentration gradient but at five different solutions stirring rates.

摘要

通过测量膜电位、盐扩散以及电参数(膜电阻和电容)对纳滤不对称膜进行电化学表征,其中膜与不同浓度((10^{-3}\leq c(M)\leq5\times10^{-2}))的(NaCl)和(KCl)溶液接触。通过这些实验确定了诸如膜中有效电荷浓度、离子迁移数以及跨膜盐和离子渗透率等特征参数。膜电阻和电容通过使用等效电路作为模型的阻抗谱(IS)测量获得。该技术允许确定与每个子层相关的电贡献;然后,假设致密子层表现为平面电容器,可以从电容值估计其厚度。通过对两种相反的外部条件进行测量,研究了膜不对称性对传输参数的影响。结果表明,膜不对称性强烈影响膜电位,当与致密层接触的溶液浓度低于膜固定电荷((X_{ef}\approx -0.004 M))时,这归因于唐南排斥,但对于反向实验条件(与膜致密子层接触的高浓度),膜电位实际上类似于溶液扩散电位。两种电解质所得结果的比较与(KCl)溶液较高的电导率一致。另一方面,还通过在给定的(NaCl)浓度梯度下但在五种不同的溶液搅拌速率下测量盐扩散,研究了膜/溶液界面处扩散层对盐渗透的影响。

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