Insufficient desorption of ions in constant-current membrane capacitive deionization (MCDI): Problems and solutions

电容去离子 海水淡化 电解质 解吸 化学 离子 水处理 电流(流体) 恒流 降级(电信) 分析化学(期刊) 材料科学 环境工程 吸附 环境科学 环境化学 热力学 电极 电气工程 物理化学 工程类 有机化学 物理 生物化学
作者
Zhizhao He,Yingnan Li,Yuan Wang,Christopher J. Miller,John Fletcher,Boyue Lian,T. David Waite
出处
期刊:Water Research [Elsevier]
卷期号:242: 120273-120273 被引量:20
标识
DOI:10.1016/j.watres.2023.120273
摘要

Membrane capacitive deionization (MCDI) is a water desalination technology that involves the removal of charged ions from water under an electric field. While constant-current MCDI coupled with stopped-flow during ion discharge is expected to exhibit high water recovery and good performance stability, previous studies have typically been undertaken using NaCl solutions only with limited investigation of MCDI performance using multi-electrolyte solutions. In the present work, the desalination performance of MCDI was evaluated using feed solutions with different levels of hardness. The increase of hardness resulted in the degradation of desalination performance with the desalination time (Δtd), total removed charge, water recovery (WR) and productivity decreasing by 20.5%, 21.8%, 3.8% and 3.2%, respectively. A more serious degradation of WR and productivity would be caused if Δtd decreases further. Analysis of the voltage profiles and effluent ion concentrations reveal that the insufficient desorption of divalent ions at constant-current discharge to 0 V was the principal reason for the degradation of performance. The Δtd and WR can be improved by discharging the cell using a lower current but the productivity decreased by 15.7% on decreasing the discharging current from 161 to 107 mA. Discharging the cell to a negative potential was shown to be a better option with the Δtd, total removed charge, WR and productivity increasing by 27.4%, 23.9%, 3.6% and 5.3%, respectively, when the cell was discharged to a minimum voltage of - 0.3 V. Use of such a method should be feasible for operation of full scale MCDI plants and would be expected to lead to better regeneration of the electrode, improved desalination performance and, potentially, a significant reduction in the need for use of clean-in-place procedures.
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