Metal–organic framework (MOF) based materials: promising candidates for electrocatalytic seawater splitting

IF 6 2区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Baghendra Singh and Smriti Verma
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Abstract

Electrochemical water splitting typically relies on freshwater, a scarce resource in many regions, limiting its industrial scalability. In contrast, seawater represents an abundant and underutilized source, comprising 97% of the world's total water supply. Electrocatalytic seawater splitting (ESS) thus emerges as a promising method for generating clean hydrogen (H2) fuel. However, a significant challenge in seawater splitting lies in the electro-oxidation of dissolved ions at the anode, which leads to severe electrode corrosion and competes with the oxygen evolution reaction (OER), thereby reducing its efficiency. Despite the utilization of various electrocatalysts, achieving high current densities for seawater splitting without side reactions remains a formidable task. Recent literature has seen a surge in research focusing on transition metal-based catalysts for this purpose. Metal–organic frameworks (MOFs) have garnered attention in electrocatalysis due to their unique properties, although their application in seawater electrolysis is relatively new compared to alkaline water splitting. To date, numerous studies have been published on MOFs and MOF-based materials for electrocatalytic seawater splitting. However, there is a lack of comprehensive articles summarizing these advancements. This article aims to address this gap by providing an overview of recent progress on MOFs and MOF-based materials tailored specifically for seawater electrolysis. We systematically discuss the relationships between structure, properties, and performance of various MOFs and MOF-based materials, supported by notable examples from recent research. Additionally, we examine how the structural characteristics, morphology, and electronic properties of MOFs influence their effectiveness in seawater electrolysis. Furthermore, the article explores future opportunities and challenges in the field, offering insights into the prospects and obstacles associated with advancing and implementing MOFs and MOF-based materials for seawater electrolysis.

Abstract Image

Abstract Image

基于金属有机框架 (MOF) 的材料:有望用于电催化海水分离的候选材料
电化学水分离通常依赖淡水,而淡水在许多地区都是稀缺资源,这限制了其工业可扩展性。相比之下,海水资源丰富,但利用不足,占世界总供水量的 97%。因此,电催化海水裂解(ESS)成为产生清洁氢(H2)燃料的一种前景广阔的方法。然而,海水裂解的一个重大挑战在于阳极溶解离子的电氧化,这会导致严重的电极腐蚀,并与氧进化反应(OER)竞争,从而降低其效率。尽管使用了各种电催化剂,但要在不发生副反应的情况下实现高电流密度的海水分馏仍然是一项艰巨的任务。最近的文献显示,为此目的对过渡金属催化剂的研究激增。金属有机框架(MOFs)因其独特的性质在电催化领域备受关注,尽管与碱性水分离相比,其在海水电解中的应用相对较新。迄今为止,已有大量关于 MOFs 和基于 MOFs 的材料在电催化海水分离方面的研究发表。然而,缺乏对这些研究进展进行总结的综合性文章。本文旨在通过概述专为海水电解量身定制的 MOFs 和 MOF 基材料的最新进展来填补这一空白。我们系统地讨论了各种 MOF 和 MOF 基材料的结构、特性和性能之间的关系,并辅以近期研究中的显著实例。此外,我们还探讨了 MOFs 的结构特征、形态和电子特性如何影响其在海水电解中的功效。此外,文章还探讨了该领域未来的机遇和挑战,对推进和实施用于海水电解的 MOFs 和 MOF 基材料的前景和障碍提出了见解。
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
Materials Chemistry Frontiers
Materials Chemistry Frontiers Materials Science-Materials Chemistry
CiteScore
12.00
自引率
2.90%
发文量
313
期刊介绍: Materials Chemistry Frontiers focuses on the synthesis and chemistry of exciting new materials, and the development of improved fabrication techniques. Characterisation and fundamental studies that are of broad appeal are also welcome. This is the ideal home for studies of a significant nature that further the development of organic, inorganic, composite and nano-materials.
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