Recent advances in MOFs, MOF-derived materials and their composites as electrocatalysts for hydrogen production

IF 4.9
E. S. Sowbakkiyavathi, Preethi Dhandapani, Senthilkumar Ramasamy, Ju Hyun Oh, Insik In, Seung Jun Lee and A. Subramania
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Abstract

Climate change, global warming, and other adverse environmental impacts are largely driven by carbon dioxide (CO2) emissions. One promising pathway to mitigate these issues is the growing eco-friendly hydrogen production technologies. Hydrogen, as a clean energy carrier, has the potential to transition industries toward decarbonization. Amongst the numerous hydrogen production approaches, water splitting via electrocatalysis presents a sustainable route. However, achieving huge productivity in the hydrogen evolution reaction (HER) requires advanced catalytic agents with enhanced active sites, huge porosity, and robust adaptability. Recently, materials based on metal–organic frameworks (MOFs) have received more consideration in electrocatalysis for environmental remediation and energy. The metal component of MOFs typically consists of metal ions (often transition metals) or metal clusters. These metal ions act as the nodes in the framework, coordinating with the organic ligands. The choice of metal determines the chemical properties, stability, and reactivity of the MOF. Numerous MOF-based materials were effectively established for the applications of the hydrogen evolution process. To produce hydrogen, this review article examines various MOF-related electrocatalysts, which include MOF-derived metals, metal oxides, metal phosphides, metal nitrides, metal chalcogenides, dichalcogenides, and their composites. Furthermore, the pros and cons of various MOF-based materials as water-splitting catalysts are discussed. Lastly, the present challenges and future prospects of these materials as electrocatalysts are also discussed.

Abstract Image

mof、mof衍生材料及其复合材料制氢电催化剂的研究进展
气候变化、全球变暖以及其他不利的环境影响在很大程度上是由二氧化碳(CO2)排放驱动的。缓解这些问题的一个有希望的途径是不断发展的环保制氢技术。氢作为一种清洁能源载体,有可能使工业向脱碳过渡。在众多的制氢方法中,通过电催化分解水是一种可持续的途径。然而,要在析氢反应(HER)中实现巨大的生产力,需要具有增强活性位点、大孔隙度和强大适应性的先进催化剂。近年来,金属有机骨架材料在环境修复和能源电催化领域受到越来越多的关注。mof的金属成分通常由金属离子(通常是过渡金属)或金属团簇组成。这些金属离子充当骨架中的节点,与有机配体配合。金属的选择决定了MOF的化学性质、稳定性和反应性。许多mof基材料有效地建立了析氢过程的应用。本文综述了各种与mof相关的电催化剂,包括mof衍生金属、金属氧化物、金属磷化物、金属氮化物、金属硫族化合物、二硫族化合物及其复合材料。此外,还讨论了各种mof基材料作为水分解催化剂的优缺点。最后,讨论了这些材料作为电催化剂面临的挑战和未来的发展前景。
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