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Boosting Nitrate to Ammonia Electroconversion through Hydrogen Gas Evolution over Cu-foam@mesh Catalysts

[Image: see text] The hydrogen evolution reaction (HER) is often considered parasitic to numerous cathodic electro-transformations of high technological interest, including but not limited to metal plating (e.g., for semiconductor processing), the CO(2) reduction reaction (CO(2)RR), the dinitrogen →...

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Autores principales: Wang, Yuzhen, Dutta, Abhijit, Iarchuk, Anna, Sun, Changzhe, Vesztergom, Soma, Broekmann, Peter
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10278070/
https://www.ncbi.nlm.nih.gov/pubmed/37342835
http://dx.doi.org/10.1021/acscatal.3c00716
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author Wang, Yuzhen
Dutta, Abhijit
Iarchuk, Anna
Sun, Changzhe
Vesztergom, Soma
Broekmann, Peter
author_facet Wang, Yuzhen
Dutta, Abhijit
Iarchuk, Anna
Sun, Changzhe
Vesztergom, Soma
Broekmann, Peter
author_sort Wang, Yuzhen
collection PubMed
description [Image: see text] The hydrogen evolution reaction (HER) is often considered parasitic to numerous cathodic electro-transformations of high technological interest, including but not limited to metal plating (e.g., for semiconductor processing), the CO(2) reduction reaction (CO(2)RR), the dinitrogen → ammonia conversion (N(2)RR), and the nitrate reduction reaction (NO(3)(–)RR). Herein, we introduce a porous Cu foam material electrodeposited onto a mesh support through the dynamic hydrogen bubble template method as an efficient catalyst for electrochemical nitrate → ammonia conversion. To take advantage of the intrinsically high surface area of this spongy foam material, effective mass transport of the nitrate reactants from the bulk electrolyte solution into its three-dimensional porous structure is critical. At high reaction rates, NO(3)(–)RR becomes, however, readily mass transport limited because of the slow nitrate diffusion into the three-dimensional porous catalyst. Herein, we demonstrate that the gas-evolving HER can mitigate the depletion of reactants inside the 3D foam catalyst through opening an additional convective nitrate mass transport pathway provided the NO(3)(–)RR becomes already mass transport limited prior to the HER onset. This pathway is achieved through the formation and release of hydrogen bubbles facilitating electrolyte replenishment inside the foam during water/nitrate co-electrolysis. This HER-mediated transport effect “boosts” the effective limiting current of nitrate reduction, as evidenced by potentiostatic electrolyses combined with an operando video inspection of the Cu-foam@mesh catalysts under operating NO(3)(–)RR conditions. Depending on the solution pH and the nitrate concentration, NO(3)(–)RR partial current densities beyond 1 A cm(–2) were achieved.
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spelling pubmed-102780702023-06-20 Boosting Nitrate to Ammonia Electroconversion through Hydrogen Gas Evolution over Cu-foam@mesh Catalysts Wang, Yuzhen Dutta, Abhijit Iarchuk, Anna Sun, Changzhe Vesztergom, Soma Broekmann, Peter ACS Catal [Image: see text] The hydrogen evolution reaction (HER) is often considered parasitic to numerous cathodic electro-transformations of high technological interest, including but not limited to metal plating (e.g., for semiconductor processing), the CO(2) reduction reaction (CO(2)RR), the dinitrogen → ammonia conversion (N(2)RR), and the nitrate reduction reaction (NO(3)(–)RR). Herein, we introduce a porous Cu foam material electrodeposited onto a mesh support through the dynamic hydrogen bubble template method as an efficient catalyst for electrochemical nitrate → ammonia conversion. To take advantage of the intrinsically high surface area of this spongy foam material, effective mass transport of the nitrate reactants from the bulk electrolyte solution into its three-dimensional porous structure is critical. At high reaction rates, NO(3)(–)RR becomes, however, readily mass transport limited because of the slow nitrate diffusion into the three-dimensional porous catalyst. Herein, we demonstrate that the gas-evolving HER can mitigate the depletion of reactants inside the 3D foam catalyst through opening an additional convective nitrate mass transport pathway provided the NO(3)(–)RR becomes already mass transport limited prior to the HER onset. This pathway is achieved through the formation and release of hydrogen bubbles facilitating electrolyte replenishment inside the foam during water/nitrate co-electrolysis. This HER-mediated transport effect “boosts” the effective limiting current of nitrate reduction, as evidenced by potentiostatic electrolyses combined with an operando video inspection of the Cu-foam@mesh catalysts under operating NO(3)(–)RR conditions. Depending on the solution pH and the nitrate concentration, NO(3)(–)RR partial current densities beyond 1 A cm(–2) were achieved. American Chemical Society 2023-06-05 /pmc/articles/PMC10278070/ /pubmed/37342835 http://dx.doi.org/10.1021/acscatal.3c00716 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Wang, Yuzhen
Dutta, Abhijit
Iarchuk, Anna
Sun, Changzhe
Vesztergom, Soma
Broekmann, Peter
Boosting Nitrate to Ammonia Electroconversion through Hydrogen Gas Evolution over Cu-foam@mesh Catalysts
title Boosting Nitrate to Ammonia Electroconversion through Hydrogen Gas Evolution over Cu-foam@mesh Catalysts
title_full Boosting Nitrate to Ammonia Electroconversion through Hydrogen Gas Evolution over Cu-foam@mesh Catalysts
title_fullStr Boosting Nitrate to Ammonia Electroconversion through Hydrogen Gas Evolution over Cu-foam@mesh Catalysts
title_full_unstemmed Boosting Nitrate to Ammonia Electroconversion through Hydrogen Gas Evolution over Cu-foam@mesh Catalysts
title_short Boosting Nitrate to Ammonia Electroconversion through Hydrogen Gas Evolution over Cu-foam@mesh Catalysts
title_sort boosting nitrate to ammonia electroconversion through hydrogen gas evolution over cu-foam@mesh catalysts
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10278070/
https://www.ncbi.nlm.nih.gov/pubmed/37342835
http://dx.doi.org/10.1021/acscatal.3c00716
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