Department of Chemical Engineering, St. Joseph's College of Engineering, Chennai, 600119, India.
Department of Chemical Engineering, Sri Sivasubramaniya Nadar College of Engineering, Chennai, 603110, India; Centre of Excellence in Water Research (CEWAR), Sri Sivasubramaniya Nadar College of Engineering, Chennai, 603110, India.
Chemosphere. 2022 Feb;289:133223. doi: 10.1016/j.chemosphere.2021.133223. Epub 2021 Dec 8.
The growing contamination of ecosystems necessitates the development of long-term pollution-removal technologies. Electrodeionization, in notably, has newly proven as an efficient method for removing ionic chemicals from polluted waterways. The fact that continuous electrodeionization is a greener technique is most probably the biggest cause for its success. It replaces the toxic chemicals typically required to replenish resins with electric power, therefore eliminating the wastewater involved with resin renewal. In water treatment, electrodeionization solves some of the drawbacks of ion exchange resin beds, particularly ion dumping as beds expire. This comprehensive review explores the theory, principles, and mechanisms of ion movement and separation in an electrodeionization unit. Also, it investigated the construction and usage, notably in removing heavy metal and its current developments in electrodeionization unit. Recent advances in Electrodeionization like polarity reversal, Resin wafer Electrodeionization, membrane free Electrodeionization, and electrostatic shielding with novel materials and hybrid process along with Electrodeionization were addressed. Further advancements are expected in electrodeionization systems that exhibit better efficacy while running at lower costs due to decreased energy usage, rendering them appealing for industrial scale up across a wide range of applications across the world.
生态系统的污染日益严重,这就需要开发长期的污染去除技术。特别值得一提的是,电去离子化已被证明是一种从受污染水道中去除离子化学物质的有效方法。连续电去离子化之所以如此成功,其最大的原因可能是因为它是一种更环保的技术。它用电力取代了通常需要补充树脂的有毒化学品,因此消除了与树脂更新相关的废水。在水处理中,电去离子化解决了离子交换树脂床的一些缺点,特别是床体失效时的离子倾倒问题。本综述探讨了电去离子化单元中离子迁移和分离的理论、原理和机制。此外,还研究了电去离子化单元的构造和使用,特别是在去除重金属方面的应用,以及电去离子化单元的当前发展情况。文中还介绍了电去离子化领域的最新进展,如极性反转、树脂片电去离子化、无膜电去离子化、以及使用新型材料和混合工艺进行静电屏蔽,这些进展有望在电去离子化系统中得到进一步发展,这些系统在降低能源消耗的情况下具有更好的效果,同时运行成本更低,从而使其在全球范围内的各种应用中具有工业扩大规模的吸引力。