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采用改性普鲁士蓝类似物作为阳离子嵌入电极的单模块流动电极电容去离子化用于连续海水淡化。

Single modular flow-electrode capacitive deionization using modified Prussian blue analogues as cation intercalation electrode for continuous water desalination.

机构信息

School of Resources and Civil Engineering, Northeastern University, Shenyang, 110819, China.

Centre for Regional Oceans, and Department of Ocean Science and Technology, Faculty of Science and Technology, University of Macau, Macau, 999078, China.

出版信息

Environ Sci Pollut Res Int. 2024 Aug;31(36):49358-49371. doi: 10.1007/s11356-024-34397-1. Epub 2024 Jul 28.

Abstract

Ion back-diffusion hinders the practical application of conventional flow-electrode capacitive deionization (FCDI) under long-term operational conditions. To address this challenge, the present study integrated cation intercalation deionization (CID) with FCDI. A novel PFCDI-CID system was developed by utilizing a modified Prussian blue analogues owing to their enhanced rheological and electrochemical properties. The PFCDI-CID system achieved a high charge efficiency of 89.77% and an energy-normalized removal salt of 0.69 mol kJ in single-cycle (SC) mode with the flow electrodes mass fraction of 2% and a desalinized water chamber-to-concentrated saline water chamber ratio of 2:1. Furthermore, under continuous operation for 12 h in SC mode, the PFCDI-CID system maintained stable desalination performance within the first 2 h. Over an extended duration, the average charge efficiency of the PFCDI-CID system was maintained at 88.44%, with an average energy-normalized removal salt of 0.65 mol kJ. The mechanism revealed that the desalination process involving the Prussian blue analogues primarily involves Na intercalation, accompanied by a small amount of electro-sorption process. This system exhibits the characteristics of conventional FCDI while enabling desalination and concentration of simulated saline water during brine discharge, thereby mitigating the impact of ion back-diffusion and broadening the application scope of FCDI.

摘要

离子反向扩散阻碍了传统流电极电容去离子(FCDI)在长期运行条件下的实际应用。为了解决这一挑战,本研究将阳离子嵌入脱盐(CID)与 FCDI 相结合。利用改进的普鲁士蓝类似物开发了一种新型的 PFCDI-CID 系统,由于其增强的流变和电化学性能。在单循环(SC)模式下,PFCDI-CID 系统在流电极质量分数为 2%和脱盐室到浓缩盐水室的比例为 2:1 的条件下,实现了 89.77%的高电荷效率和 0.69 mol kJ 的能量归一化去除盐量。此外,在 SC 模式下连续运行 12 小时后,PFCDI-CID 系统在前 2 小时内保持稳定的脱盐性能。在较长时间内,PFCDI-CID 系统的平均电荷效率保持在 88.44%,平均能量归一化去除盐量为 0.65 mol kJ。该机制表明,涉及普鲁士蓝类似物的脱盐过程主要涉及 Na 嵌入,同时伴随着少量的电吸附过程。该系统表现出传统 FCDI 的特点,同时能够在盐水排放过程中对模拟盐水进行脱盐和浓缩,从而减轻离子反向扩散的影响,拓宽 FCDI 的应用范围。

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