Ion adsorption on nanofiltration membrane surface and its effect on rejection of charged solutes: A zeta potential approach

吸附 化学 Zeta电位 二价 表面电荷 纳滤 朗缪尔 单层 离子 无机化学 吉布斯自由能 朗缪尔吸附模型 静电学 化学工程 热力学 物理化学 有机化学 生物化学 纳米颗粒 工程类 物理
作者
Haoyu Guo,Xiaoqi Gao,Kaichang Yu,Xiaomao Wang,Shuming Liu
出处
期刊:Separation and Purification Technology [Elsevier BV]
卷期号:326: 124830-124830 被引量:32
标识
DOI:10.1016/j.seppur.2023.124830
摘要

The net charge on nanofiltration (NF) membrane surface, which differs from the inherent fixed charges due to the adsorption of ions from the feed water, has a great effect on the rejection selectivity of the membrane. In this study, by taking advantage of the electric double layer theory, streaming zeta potentials of the membrane varying with solution composition and concentration were utilized to investigate the characteristics and mechanisms of ion adsorption on the typical negatively charged NF membrane surface, which were then utilized to interpret the (selective) rejection behaviors for different solutes. Results showed that the cation adsorption all followed the Langmuir isotherm, indicative of monolayer adsorption mechanism. Both Langmuir adsorption fitting results and Gibbs free energy calculation showed that the cation adsorption is primarily of Coulomb force origin, rather than the chemical complexation. In addition, Ca2+ and Mg2+ could occupy the membrane surface much more facilely than Na+, with the adsorption of divalent cations reaching near saturation at relatively low concentrations in the magnitude of 1 mmol L−1. Contrary to the original presumption, no remarkable difference was observed between the adsorptions of Ca2+ and Mg2+, as was also the case between -COOH and -SO3H, the two common types of acidic functional groups on membrane surface for cation adsorption. These mechanisms of ion adsorption, when incorporated with the existing NF theory, could well interpret the seemingly "strange" rejection behaviors including the counter-ion competition effect. This study evidenced that zeta potential measurements could act as a useful approach for the study of ion adsorption on NF membrane surface and selective rejection mechanisms of NF membranes as well.
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