Department of Civil and Environmental Engineering, Vanderbilt University, Nashville, Tennessee 37235-1831, United States.
Department of Chemical and Bimolecular Engineering, Vanderbilt University, Nashville, Tennessee 37235-1831, United States.
Environ Sci Technol. 2024 Aug 6;58(31):13995-14004. doi: 10.1021/acs.est.4c02681. Epub 2024 Jul 18.
Electrosorption (ES) is a research frontier in electrochemical separation, with proven potential applications in desalination, wastewater treatment, and selective resource extraction. However, due to the limited adsorption capacity of film electrodes, ES requires short circuiting or circuit reversal, accompanied by a solution switch between the feed solution and receiving solution, to sustain desalination over many charge-discharge cycles. In previously reported studies, solution switches have been commonly ignored to simplify experimental procedures, and their impacts on separation performance are thus not well understood. This study aims to provide a quantitative analysis of the impacts of mixing due to a solution switch on the performance of ES-based desalination. A numerical model of ES has been employed to evaluate the adverse effects of the solution switch on the desalination performance in three commonly used operation modes. The analysis reveals that the impacts of mixing due to solution-switch are more severe with a larger concentration difference between the desalinated water and the brine and provides insights into the effectiveness of increasing electrode loading or specific capacity in mitigating the detrimental impacts of mixing. Even with state-of-the-art systems, producing freshwater from seawater or even brackish water with medium-to-high salinity is practically challenging due to the presence of solution switch.
电吸附(ES)是电化学分离领域的一个研究前沿,已被证明在海水淡化、废水处理和选择性资源提取方面具有潜在的应用。然而,由于薄膜电极的吸附容量有限,ES 需要进行短接或电路反转,并在进料溶液和接收溶液之间进行溶液切换,以在多次充放电循环中维持脱盐。在之前的研究报告中,为了简化实验程序,通常忽略了溶液切换的影响,因此对其对分离性能的影响了解甚少。本研究旨在对由于溶液切换引起的混合对基于 ES 的脱盐性能的影响进行定量分析。采用 ES 的数值模型来评估在三种常用操作模式下溶液切换对脱盐性能的不利影响。分析表明,由于溶液切换引起的混合的影响在淡化水和盐水之间的浓度差较大时更为严重,并为增加电极负载或比容量以减轻混合的不利影响的有效性提供了见解。即使采用最先进的系统,由于溶液切换的存在,从海水甚至中高盐度的咸水生产淡水在实际应用中也具有挑战性。