Perspective on direct seawater electrolysis and electrodesalination: innovations and future directions for mining green X

IF 9.3 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Green Chemistry Pub Date : 2024-11-20 DOI:10.1039/D4GC04930F
Gun-hee Moon, Jonghun Lim, Byeong-ju Kim, Dong Suk Han and Hyunwoong Park
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引用次数: 0

Abstract

Molecular hydrogen (H2) represents a sustainable and environmentally benign energy resource. Of the various methodologies that have been developed for H2 production, water electrolysis has garnered particular attention due to its ability to generate H2 without emitting CO2 or other pollutants, with seawater electrolysis receiving significant focus due to the abundance and accessibility of seawater. However, both direct and indirect seawater electrolysis technologies have a number of practical limitations, including the high energy consumption and maintenance costs associated with seawater desalination systems and the need for strong alkaline conditions. Nevertheless, indirect seawater electrolysis, which amalgamates desalination and water electrolysis processes by employing clean water produced by seawater reverse osmosis (RO) as the feed for water splitting, is currently considered more economical than direct electrolysis. Electrodeionization has also emerged as an alternative to conventional seawater RO due to its high energy efficiency and environmental advantages. In addition, the development of environmentally friendly processes to simultaneously extract high-value compounds from seawater and the brine produced as a by-product from seawater RO can mitigate the high process costs associated with seawater electrolysis and deionization. Recent advancements in seawater electrolysis technologies based on the chlorine evolution reaction (CER) have also been reported, with the generated chlorine harnessed as a resource in other processes. The CER and electrodeionization can be used in a diverse array of other applications, including chlorine-mediated electrochemical redox reactions, the desalination-coupled electrochemical production of acids and bases, resource recovery from seawater and brine, direct ocean CO2 capture, and reverse electrodialysis for green electricity production. In this perspective, we first compare the mechanisms, thermodynamics, and kinetics of the CER with those of the oxygen evolution reaction (OER). Subsequently, we introduce an array of electrodeionization technologies that can be seamlessly integrated with seawater electrolysis systems. We then describe the various applications of seawater electrolysis and electrodeionization technologies, before addressing the remaining challenges and offering insights into the future prospects for the electrochemical utilization of seawater resources.

Abstract Image

海水直接电解与海水淡化展望:矿业绿色的创新与未来方向
分子氢(H2)是一种可持续、环保的能源。在已经开发的各种制氢方法中,水电解法由于能够在不排放二氧化碳或其他污染物的情况下产生氢气而受到特别关注,而海水电解法由于海水的丰富和可及性而受到重视。然而,直接和间接的海水电解技术都有一些实际的局限性,包括与海水淡化系统相关的高能耗和维护成本,以及对强碱性条件的需求。然而,间接海水电解目前被认为比直接电解更经济,它将海水反渗透(RO)产生的清洁水作为分解水的原料,将海水淡化和水电解过程合并在一起。由于其高能效和环保优势,电去离子也成为传统海水反渗透的替代方案。此外,开发环境友好型工艺,同时从海水中提取高价值化合物,并从海水反渗透的副产品中产生盐水,可以降低与海水电解和去离子相关的高工艺成本。基于氯析出反应(CER)的海水电解技术的最新进展也有报道,产生的氯作为资源在其他过程中加以利用。CER和电去离子可用于多种其他应用,包括氯介导的电化学氧化还原反应、脱盐耦合的酸和碱电化学生产、海水和盐水资源回收、直接海洋二氧化碳捕获以及用于绿色电力生产的反电渗析。从这个角度来看,我们首先比较了CER和OER的机理、热力学和动力学。随后,我们介绍了一系列可以与海水电解系统无缝集成的电去离子技术。然后,我们描述了海水电解和电去离子技术的各种应用,然后解决了剩余的挑战,并对海水资源的电化学利用的未来前景提供了见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Green Chemistry
Green Chemistry 化学-化学综合
CiteScore
16.10
自引率
7.10%
发文量
677
审稿时长
1.4 months
期刊介绍: Green Chemistry is a journal that provides a unique forum for the publication of innovative research on the development of alternative green and sustainable technologies. The scope of Green Chemistry is based on the definition proposed by Anastas and Warner (Green Chemistry: Theory and Practice, P T Anastas and J C Warner, Oxford University Press, Oxford, 1998), which defines green chemistry as the utilisation of a set of principles that reduces or eliminates the use or generation of hazardous substances in the design, manufacture and application of chemical products. Green Chemistry aims to reduce the environmental impact of the chemical enterprise by developing a technology base that is inherently non-toxic to living things and the environment. The journal welcomes submissions on all aspects of research relating to this endeavor and publishes original and significant cutting-edge research that is likely to be of wide general appeal. For a work to be published, it must present a significant advance in green chemistry, including a comparison with existing methods and a demonstration of advantages over those methods.
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