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Research progress on MOFs and their derivatives as promising and efficient electrode materials for electrocatalytic hydrogen production from water

Hydrogen energy is considered to be the most potential “ultimate energy source” due to its high combustion calorific value, cleanliness, and pollution-free characteristics. Furthermore, the production of hydrogen via the electrolysis of water has the advantages of simplicity, high efficiency, enviro...

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Autores principales: Cao, Xuankai, Gao, Yan, Li, Yanteng, Weragoda, Delika M., Tian, Guohong, Zhang, Wenke, Zhang, Zhanchao, Zhao, Xudong, Chen, Baoming
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10424057/
https://www.ncbi.nlm.nih.gov/pubmed/37583672
http://dx.doi.org/10.1039/d3ra04110g
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author Cao, Xuankai
Gao, Yan
Li, Yanteng
Weragoda, Delika M.
Tian, Guohong
Zhang, Wenke
Zhang, Zhanchao
Zhao, Xudong
Chen, Baoming
author_facet Cao, Xuankai
Gao, Yan
Li, Yanteng
Weragoda, Delika M.
Tian, Guohong
Zhang, Wenke
Zhang, Zhanchao
Zhao, Xudong
Chen, Baoming
author_sort Cao, Xuankai
collection PubMed
description Hydrogen energy is considered to be the most potential “ultimate energy source” due to its high combustion calorific value, cleanliness, and pollution-free characteristics. Furthermore, the production of hydrogen via the electrolysis of water has the advantages of simplicity, high efficiency, environmentally safe, and high-purity hydrogen. However, it is also associated with issues such as high-power consumption for the reaction and limited large-scale application of noble metal catalysts. Metal–organic frameworks (MOFs) are porous composite materials composed of metal ions and organic functional groups through orderly coordination with large specific surface areas and large porosity. Herein, we focus on the research status of MOFs and their transition metal derivatives for electrocatalytic water splitting to produce hydrogen and briefly describe the reaction mechanism and evaluation parameters of the electrocatalytic hydrogen evolution and oxygen evolution reactions. Furthermore, the relationship between the catalytic behavior and catalytic activity of different MOF-based catalysts and their morphology, elemental composition, and synthetic strategy is analyzed and discussed. The reasons for the excellent activity and poor stability of the original MOF materials for the electrolysis of water reaction are shown through analysis, and using various means to improve the catalytic activity by changing the electronic structure, active sites, and charge transfer rate, MOF-based catalysts were obtained. Finally, we present perspectives on the future development of MOFs for the electrocatalytic decomposition of water.
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spelling pubmed-104240572023-08-15 Research progress on MOFs and their derivatives as promising and efficient electrode materials for electrocatalytic hydrogen production from water Cao, Xuankai Gao, Yan Li, Yanteng Weragoda, Delika M. Tian, Guohong Zhang, Wenke Zhang, Zhanchao Zhao, Xudong Chen, Baoming RSC Adv Chemistry Hydrogen energy is considered to be the most potential “ultimate energy source” due to its high combustion calorific value, cleanliness, and pollution-free characteristics. Furthermore, the production of hydrogen via the electrolysis of water has the advantages of simplicity, high efficiency, environmentally safe, and high-purity hydrogen. However, it is also associated with issues such as high-power consumption for the reaction and limited large-scale application of noble metal catalysts. Metal–organic frameworks (MOFs) are porous composite materials composed of metal ions and organic functional groups through orderly coordination with large specific surface areas and large porosity. Herein, we focus on the research status of MOFs and their transition metal derivatives for electrocatalytic water splitting to produce hydrogen and briefly describe the reaction mechanism and evaluation parameters of the electrocatalytic hydrogen evolution and oxygen evolution reactions. Furthermore, the relationship between the catalytic behavior and catalytic activity of different MOF-based catalysts and their morphology, elemental composition, and synthetic strategy is analyzed and discussed. The reasons for the excellent activity and poor stability of the original MOF materials for the electrolysis of water reaction are shown through analysis, and using various means to improve the catalytic activity by changing the electronic structure, active sites, and charge transfer rate, MOF-based catalysts were obtained. Finally, we present perspectives on the future development of MOFs for the electrocatalytic decomposition of water. The Royal Society of Chemistry 2023-08-14 /pmc/articles/PMC10424057/ /pubmed/37583672 http://dx.doi.org/10.1039/d3ra04110g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Cao, Xuankai
Gao, Yan
Li, Yanteng
Weragoda, Delika M.
Tian, Guohong
Zhang, Wenke
Zhang, Zhanchao
Zhao, Xudong
Chen, Baoming
Research progress on MOFs and their derivatives as promising and efficient electrode materials for electrocatalytic hydrogen production from water
title Research progress on MOFs and their derivatives as promising and efficient electrode materials for electrocatalytic hydrogen production from water
title_full Research progress on MOFs and their derivatives as promising and efficient electrode materials for electrocatalytic hydrogen production from water
title_fullStr Research progress on MOFs and their derivatives as promising and efficient electrode materials for electrocatalytic hydrogen production from water
title_full_unstemmed Research progress on MOFs and their derivatives as promising and efficient electrode materials for electrocatalytic hydrogen production from water
title_short Research progress on MOFs and their derivatives as promising and efficient electrode materials for electrocatalytic hydrogen production from water
title_sort research progress on mofs and their derivatives as promising and efficient electrode materials for electrocatalytic hydrogen production from water
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10424057/
https://www.ncbi.nlm.nih.gov/pubmed/37583672
http://dx.doi.org/10.1039/d3ra04110g
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