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Local hydrophobicity allows high-performance electrochemical carbon monoxide reduction to C(2+) products

While CO can already be produced at industrially relevant current densities via CO(2) electrolysis, the selective formation of C(2+) products seems challenging. CO electrolysis, in principle, can overcome this barrier, hence forming valuable chemicals from CO(2) in two steps. Here we demonstrate tha...

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Autores principales: Kormányos, Attila, Endrődi, Balázs, Zhang, Zheng, Samu, Angelika, Mérai, László, Samu, Gergely F., Janovák, László, Janáky, Csaba
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10193833/
https://www.ncbi.nlm.nih.gov/pubmed/37213934
http://dx.doi.org/10.1039/d3ey00006k
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author Kormányos, Attila
Endrődi, Balázs
Zhang, Zheng
Samu, Angelika
Mérai, László
Samu, Gergely F.
Janovák, László
Janáky, Csaba
author_facet Kormányos, Attila
Endrődi, Balázs
Zhang, Zheng
Samu, Angelika
Mérai, László
Samu, Gergely F.
Janovák, László
Janáky, Csaba
author_sort Kormányos, Attila
collection PubMed
description While CO can already be produced at industrially relevant current densities via CO(2) electrolysis, the selective formation of C(2+) products seems challenging. CO electrolysis, in principle, can overcome this barrier, hence forming valuable chemicals from CO(2) in two steps. Here we demonstrate that a mass-produced, commercially available polymeric pore sealer can be used as a catalyst binder, ensuring high rate and selective CO reduction. We achieved above 70% faradaic efficiency for C(2+) products formation at j = 500 mA cm(−2) current density. As no specific interaction between the polymer and the CO reactant was found, we attribute the stable and selective operation of the electrolyzer cell to the controlled wetting of the catalyst layer due to the homogeneous polymer coating on the catalyst particles’ surface. These results indicate that sophistically designed surface modifiers are not necessarily required for CO electrolysis, but a simpler alternative can in some cases lead to the same reaction rate, selectivity and energy efficiency; hence the capital costs can be significantly decreased.
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spelling pubmed-101938332023-05-19 Local hydrophobicity allows high-performance electrochemical carbon monoxide reduction to C(2+) products Kormányos, Attila Endrődi, Balázs Zhang, Zheng Samu, Angelika Mérai, László Samu, Gergely F. Janovák, László Janáky, Csaba EES Catal Chemistry While CO can already be produced at industrially relevant current densities via CO(2) electrolysis, the selective formation of C(2+) products seems challenging. CO electrolysis, in principle, can overcome this barrier, hence forming valuable chemicals from CO(2) in two steps. Here we demonstrate that a mass-produced, commercially available polymeric pore sealer can be used as a catalyst binder, ensuring high rate and selective CO reduction. We achieved above 70% faradaic efficiency for C(2+) products formation at j = 500 mA cm(−2) current density. As no specific interaction between the polymer and the CO reactant was found, we attribute the stable and selective operation of the electrolyzer cell to the controlled wetting of the catalyst layer due to the homogeneous polymer coating on the catalyst particles’ surface. These results indicate that sophistically designed surface modifiers are not necessarily required for CO electrolysis, but a simpler alternative can in some cases lead to the same reaction rate, selectivity and energy efficiency; hence the capital costs can be significantly decreased. RSC 2023-03-13 /pmc/articles/PMC10193833/ /pubmed/37213934 http://dx.doi.org/10.1039/d3ey00006k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Kormányos, Attila
Endrődi, Balázs
Zhang, Zheng
Samu, Angelika
Mérai, László
Samu, Gergely F.
Janovák, László
Janáky, Csaba
Local hydrophobicity allows high-performance electrochemical carbon monoxide reduction to C(2+) products
title Local hydrophobicity allows high-performance electrochemical carbon monoxide reduction to C(2+) products
title_full Local hydrophobicity allows high-performance electrochemical carbon monoxide reduction to C(2+) products
title_fullStr Local hydrophobicity allows high-performance electrochemical carbon monoxide reduction to C(2+) products
title_full_unstemmed Local hydrophobicity allows high-performance electrochemical carbon monoxide reduction to C(2+) products
title_short Local hydrophobicity allows high-performance electrochemical carbon monoxide reduction to C(2+) products
title_sort local hydrophobicity allows high-performance electrochemical carbon monoxide reduction to c(2+) products
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10193833/
https://www.ncbi.nlm.nih.gov/pubmed/37213934
http://dx.doi.org/10.1039/d3ey00006k
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