Li Qian, Zheng Yun, Xiao Dengji, Or Tyler, Gao Rui, Li Zhaoqiang, Feng Ming, Shui Lingling, Zhou Guofu, Wang Xin, Chen Zhongwei
South China Academy of Advanced Optoelectronics and International Academy of Optoelectronics at Zhaoqing South China Normal University Guangdong 510631 P. R. China.
Department of Chemical Engineering Waterloo Institute of Nanotechnology University of Waterloo 200 University Ave West Waterloo Ontario N2L 3G1 Canada.
Adv Sci (Weinh). 2020 Oct 11;7(22):2002213. doi: 10.1002/advs.202002213. eCollection 2020 Nov.
Capacitive deionization (CDI) is an emerging desalination technology for effective removal of ionic species from aqueous solutions. Compared to conventional CDI, which is based on carbon electrodes and struggles with high salinity streams due to a limited salt removal capacity by ion electrosorption and excessive co-ion expulsion, the emerging Faradaic electrodes provide unique opportunities to upgrade the CDI performance, i.e., achieving much higher salt removal capacities and energy-efficient desalination for high salinity streams, due to the Faradaic reaction for ion capture. This article presents a comprehensive overview on the current developments of Faradaic electrode materials for CDI. Here, the fundamentals of Faradaic electrode-based CDI are first introduced in detail, including novel CDI cell architectures, key CDI performance metrics, ion capture mechanisms, and the design principles of Faradaic electrode materials. Three main categories of Faradaic electrode materials are summarized and discussed regarding their crystal structure, physicochemical characteristics, and desalination performance. In particular, the ion capture mechanisms in Faradaic electrode materials are highlighted to obtain a better understanding of the CDI process. Moreover, novel tailored applications, including selective ion removal and contaminant removal, are specifically introduced. Finally, the remaining challenges and research directions are also outlined to provide guidelines for future research.
电容去离子化(CDI)是一种新兴的脱盐技术,用于从水溶液中有效去除离子物种。与基于碳电极的传统CDI相比,传统CDI由于离子电吸附的盐去除能力有限和共离子过度排出而难以处理高盐度水流,新兴的法拉第电极提供了提升CDI性能的独特机会,即由于离子捕获的法拉第反应,对于高盐度水流实现更高的盐去除能力和节能脱盐。本文全面概述了用于CDI的法拉第电极材料的当前发展情况。在此,首先详细介绍基于法拉第电极的CDI的基本原理,包括新型CDI电池结构、关键CDI性能指标、离子捕获机制以及法拉第电极材料的设计原则。总结并讨论了法拉第电极材料的三大类,涉及其晶体结构、物理化学特性和脱盐性能。特别强调了法拉第电极材料中的离子捕获机制,以更好地理解CDI过程。此外,还专门介绍了新型定制应用,包括选择性离子去除和污染物去除。最后,还概述了剩余的挑战和研究方向,为未来的研究提供指导。