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通过电容离子交换实现极端单价离子选择性。

Extreme Monovalent Ion Selectivity Via Capacitive Ion Exchange.

机构信息

Faculty of Mechanical Engineering, Technion - Israel Institute of Technology, Haifa, Israel.

Schulich Faculty of Chemistry, Technion - Israel Institute of Technology, Haifa, Israel; Grand Technion Energy Program, Technion - Israel Institute of Technology, Haifa, Israel.

出版信息

Water Res. 2023 Nov 1;246:120684. doi: 10.1016/j.watres.2023.120684. Epub 2023 Sep 29.

DOI:10.1016/j.watres.2023.120684
PMID:37864883
Abstract

Capacitive deionization (CDI) is an emerging technology applied to brackish water desalination and ion selective separations. A typical CDI cell consists of two microporous carbon electrodes, where ions are stored in charged micropore via electrosorption into electric double layers. For typical feed waters containing mixtures of several cations and anions, some of which are polluting, models are needed to guide cell design for a target separation, given the complex electrosorption dynamics of each species. An emerging application for CDI is brackish water treatment for direct agricultural use, for which it is often important to selectively electrosorb monovalent Na cations over divalent Ca and Mg cations. Recently, it was demonstrated that utilizing constant-voltage CDI cell charging with sulfonated cathodes and short charging times enabled monovalent-selective separations. Here, we utilize a one-dimensional transient CDI model for a flow-through electrode CDI cell to elucidate the mechanisms enabling such separations. We report the discovery that an asymmetric CDI cell with a chemically functionalized cathode induces electric charges in the pristine anode at 0 V cell voltage, which has important implications for monovalent cation selectivity. Leveraging our mechanistic understanding, with our model we uncover a novel operational regime we term "capacitive ion exchange", where the concentration of one ion species increases while competing species concentration decreases. This regime enables resin-less exchange of monovalent cations for divalent cations, with chemical-free electrical regeneration.

摘要

电容去离子 (CDI) 是一种新兴的技术,应用于咸水淡化和离子选择性分离。典型的 CDI 电池由两个微孔碳电极组成,其中离子通过静电吸附到双电层中储存在带电的微孔中。对于含有几种阳离子和阴离子混合物的典型进料水,需要模型来指导电池设计以实现目标分离,因为每种物质的电吸附动力学都很复杂。CDI 的一个新兴应用是用于直接农业用途的咸水淡化,对于这种应用,选择性地电吸附单价的 Na 阳离子而不是二价的 Ca 和 Mg 阳离子通常很重要。最近,已经证明利用带有磺化阴极的恒压 CDI 电池充电和短充电时间可以实现单价选择性分离。在这里,我们利用一维瞬态 CDI 模型来阐明实现这种分离的机制。我们报告了一个发现,即具有化学功能化阴极的不对称 CDI 电池在 0 V 电池电压下会在原始阳极上产生电荷,这对单价阳离子选择性有重要意义。利用我们的机理理解,通过我们的模型,我们揭示了一种新的操作模式,我们称之为“电容离子交换”,其中一种离子的浓度增加,而竞争离子的浓度降低。这种模式可以实现无树脂的单价阳离子与二价阳离子的交换,并且可以进行无化学物质的电再生。

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