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Bifunctional Al-Doped Cobalt Ferrocyanide Nanocube Array for Energy-Saving Hydrogen Production via Urea Electrolysis

The very slow anodic oxygen evolution reaction (OER) greatly limits the development of large-scale hydrogen production via water electrolysis. By replacing OER with an easier urea oxidation reaction (UOR), developing an HER/UOR coupling electrolysis system for hydrogen production could save a signif...

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Autores principales: Gao, Xiafei, Gao, Mengyue, Yu, Xueping, Jin, Xiaoyong, Ni, Gang, Peng, Juan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10608971/
https://www.ncbi.nlm.nih.gov/pubmed/37894626
http://dx.doi.org/10.3390/molecules28207147
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author Gao, Xiafei
Gao, Mengyue
Yu, Xueping
Jin, Xiaoyong
Ni, Gang
Peng, Juan
author_facet Gao, Xiafei
Gao, Mengyue
Yu, Xueping
Jin, Xiaoyong
Ni, Gang
Peng, Juan
author_sort Gao, Xiafei
collection PubMed
description The very slow anodic oxygen evolution reaction (OER) greatly limits the development of large-scale hydrogen production via water electrolysis. By replacing OER with an easier urea oxidation reaction (UOR), developing an HER/UOR coupling electrolysis system for hydrogen production could save a significant amount of energy and money. An Al-doped cobalt ferrocyanide (Al-Co(2)Fe(CN)(6)) nanocube array was in situ grown on nickel foam (Al-Co(2)Fe(CN)(6)/NF). Due to the unique nanocube array structure and regulated electronic structure of Al-Co(2)Fe(CN)(6), the as-prepared Al-Co(2)Fe(CN)(6)/NF electrode exhibited outstanding catalytic activities and long-term stability to both UOR and HER. The Al-Co(2)Fe(CN)(6)/NF electrode needed potentials of 0.169 V and 1.118 V (vs. a reversible hydrogen electrode) to drive 10 mA cm(−2) for HER and UOR, respectively, in alkaline conditions. Applying the Al-Co(2)Fe(CN)(6)/NF to a whole-urea electrolysis system, 10 mA cm(−2) was achieved at a cell voltage of 1.357 V, which saved 11.2% electricity energy compared to that of traditional water splitting. Density functional theory calculations demonstrated that the boosted UOR activity comes from Co sites with Al-doped electronic environments. This promoted and balanced the adsorption/desorption of the main intermediates in the UOR process. This work indicates that Co-based materials as efficient catalysts have great prospects for application in urea electrolysis systems and are expected to achieve low-cost and energy-saving H(2) production.
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spelling pubmed-106089712023-10-28 Bifunctional Al-Doped Cobalt Ferrocyanide Nanocube Array for Energy-Saving Hydrogen Production via Urea Electrolysis Gao, Xiafei Gao, Mengyue Yu, Xueping Jin, Xiaoyong Ni, Gang Peng, Juan Molecules Article The very slow anodic oxygen evolution reaction (OER) greatly limits the development of large-scale hydrogen production via water electrolysis. By replacing OER with an easier urea oxidation reaction (UOR), developing an HER/UOR coupling electrolysis system for hydrogen production could save a significant amount of energy and money. An Al-doped cobalt ferrocyanide (Al-Co(2)Fe(CN)(6)) nanocube array was in situ grown on nickel foam (Al-Co(2)Fe(CN)(6)/NF). Due to the unique nanocube array structure and regulated electronic structure of Al-Co(2)Fe(CN)(6), the as-prepared Al-Co(2)Fe(CN)(6)/NF electrode exhibited outstanding catalytic activities and long-term stability to both UOR and HER. The Al-Co(2)Fe(CN)(6)/NF electrode needed potentials of 0.169 V and 1.118 V (vs. a reversible hydrogen electrode) to drive 10 mA cm(−2) for HER and UOR, respectively, in alkaline conditions. Applying the Al-Co(2)Fe(CN)(6)/NF to a whole-urea electrolysis system, 10 mA cm(−2) was achieved at a cell voltage of 1.357 V, which saved 11.2% electricity energy compared to that of traditional water splitting. Density functional theory calculations demonstrated that the boosted UOR activity comes from Co sites with Al-doped electronic environments. This promoted and balanced the adsorption/desorption of the main intermediates in the UOR process. This work indicates that Co-based materials as efficient catalysts have great prospects for application in urea electrolysis systems and are expected to achieve low-cost and energy-saving H(2) production. MDPI 2023-10-18 /pmc/articles/PMC10608971/ /pubmed/37894626 http://dx.doi.org/10.3390/molecules28207147 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Gao, Xiafei
Gao, Mengyue
Yu, Xueping
Jin, Xiaoyong
Ni, Gang
Peng, Juan
Bifunctional Al-Doped Cobalt Ferrocyanide Nanocube Array for Energy-Saving Hydrogen Production via Urea Electrolysis
title Bifunctional Al-Doped Cobalt Ferrocyanide Nanocube Array for Energy-Saving Hydrogen Production via Urea Electrolysis
title_full Bifunctional Al-Doped Cobalt Ferrocyanide Nanocube Array for Energy-Saving Hydrogen Production via Urea Electrolysis
title_fullStr Bifunctional Al-Doped Cobalt Ferrocyanide Nanocube Array for Energy-Saving Hydrogen Production via Urea Electrolysis
title_full_unstemmed Bifunctional Al-Doped Cobalt Ferrocyanide Nanocube Array for Energy-Saving Hydrogen Production via Urea Electrolysis
title_short Bifunctional Al-Doped Cobalt Ferrocyanide Nanocube Array for Energy-Saving Hydrogen Production via Urea Electrolysis
title_sort bifunctional al-doped cobalt ferrocyanide nanocube array for energy-saving hydrogen production via urea electrolysis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10608971/
https://www.ncbi.nlm.nih.gov/pubmed/37894626
http://dx.doi.org/10.3390/molecules28207147
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