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Boosted formic acid electro-oxidation on platinum nanoparticles and “mixed-valence” iron and nickel oxides

The modification of Pt nanoparticles (nano-Pt, assembled electrochemically onto a glassy carbon (GC) substrate) with hybrid multivalent nickel (nano-NiO(x)) and iron (nano-FeO(x)) oxide nanostructures was intended to steer the mechanism of the formic acid electro-oxidation (FAO) in the desirable deh...

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Autores principales: Al-Qodami, Bilquis Ali, Sayed, Sayed Youssef, Alalawy, Hafsa H., Al-Akraa, Islam M., Allam, Nageh K., Mohammad, Ahmad M.
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/PMC10333810/
https://www.ncbi.nlm.nih.gov/pubmed/37441028
http://dx.doi.org/10.1039/d3ra03350c
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author Al-Qodami, Bilquis Ali
Sayed, Sayed Youssef
Alalawy, Hafsa H.
Al-Akraa, Islam M.
Allam, Nageh K.
Mohammad, Ahmad M.
author_facet Al-Qodami, Bilquis Ali
Sayed, Sayed Youssef
Alalawy, Hafsa H.
Al-Akraa, Islam M.
Allam, Nageh K.
Mohammad, Ahmad M.
author_sort Al-Qodami, Bilquis Ali
collection PubMed
description The modification of Pt nanoparticles (nano-Pt, assembled electrochemically onto a glassy carbon (GC) substrate) with hybrid multivalent nickel (nano-NiO(x)) and iron (nano-FeO(x)) oxide nanostructures was intended to steer the mechanism of the formic acid electro-oxidation (FAO) in the desirable dehydrogenation pathway. This binary modification with inexpensive oxides succeeded in mediating the reaction mechanism of FAO by boosting reaction kinetics “electron transfer” and amending the surface geometry of the catalyst against poisoning. The sequence of deposition was optimized where the a-FeO(x)/NiO(x)/Pt/GC catalyst (where “a” denotes a post-activation step for the catalyst at −0.5 V in 0.5 mol L(−1) NaOH) reserved the best hierarchy. Morphologically, while nano-Pt appeared to be spherical (ca. 100 nm in average diameter), nano-NiO(x) appeared as flowered nanoaggregates (ca. 56 nm in average diameter) and nano-FeO(x) (after activation) retained a plate-like nanostructure (ca. 38 nm in average diameter and 167 nm in average length). This a-FeO(x)/NiO(x)/Pt/GC catalyst demonstrated a remarkable catalytic efficiency (125 mA mg(Pt)(−1)) for FAO that was ca. 12.5 times that of the pristine Pt/GC catalyst with up to five times improvement in the catalytic tolerance against poisoning and up to −214 mV shift in the FAO's onset potential. Evidences for equipping the a-FeO(x)/NiO(x)/Pt/GC catalyst with the least charge transfer resistance and the highest stability among the whole investigated catalysts are provided and discussed.
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spelling pubmed-103338102023-07-12 Boosted formic acid electro-oxidation on platinum nanoparticles and “mixed-valence” iron and nickel oxides Al-Qodami, Bilquis Ali Sayed, Sayed Youssef Alalawy, Hafsa H. Al-Akraa, Islam M. Allam, Nageh K. Mohammad, Ahmad M. RSC Adv Chemistry The modification of Pt nanoparticles (nano-Pt, assembled electrochemically onto a glassy carbon (GC) substrate) with hybrid multivalent nickel (nano-NiO(x)) and iron (nano-FeO(x)) oxide nanostructures was intended to steer the mechanism of the formic acid electro-oxidation (FAO) in the desirable dehydrogenation pathway. This binary modification with inexpensive oxides succeeded in mediating the reaction mechanism of FAO by boosting reaction kinetics “electron transfer” and amending the surface geometry of the catalyst against poisoning. The sequence of deposition was optimized where the a-FeO(x)/NiO(x)/Pt/GC catalyst (where “a” denotes a post-activation step for the catalyst at −0.5 V in 0.5 mol L(−1) NaOH) reserved the best hierarchy. Morphologically, while nano-Pt appeared to be spherical (ca. 100 nm in average diameter), nano-NiO(x) appeared as flowered nanoaggregates (ca. 56 nm in average diameter) and nano-FeO(x) (after activation) retained a plate-like nanostructure (ca. 38 nm in average diameter and 167 nm in average length). This a-FeO(x)/NiO(x)/Pt/GC catalyst demonstrated a remarkable catalytic efficiency (125 mA mg(Pt)(−1)) for FAO that was ca. 12.5 times that of the pristine Pt/GC catalyst with up to five times improvement in the catalytic tolerance against poisoning and up to −214 mV shift in the FAO's onset potential. Evidences for equipping the a-FeO(x)/NiO(x)/Pt/GC catalyst with the least charge transfer resistance and the highest stability among the whole investigated catalysts are provided and discussed. The Royal Society of Chemistry 2023-07-11 /pmc/articles/PMC10333810/ /pubmed/37441028 http://dx.doi.org/10.1039/d3ra03350c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Al-Qodami, Bilquis Ali
Sayed, Sayed Youssef
Alalawy, Hafsa H.
Al-Akraa, Islam M.
Allam, Nageh K.
Mohammad, Ahmad M.
Boosted formic acid electro-oxidation on platinum nanoparticles and “mixed-valence” iron and nickel oxides
title Boosted formic acid electro-oxidation on platinum nanoparticles and “mixed-valence” iron and nickel oxides
title_full Boosted formic acid electro-oxidation on platinum nanoparticles and “mixed-valence” iron and nickel oxides
title_fullStr Boosted formic acid electro-oxidation on platinum nanoparticles and “mixed-valence” iron and nickel oxides
title_full_unstemmed Boosted formic acid electro-oxidation on platinum nanoparticles and “mixed-valence” iron and nickel oxides
title_short Boosted formic acid electro-oxidation on platinum nanoparticles and “mixed-valence” iron and nickel oxides
title_sort boosted formic acid electro-oxidation on platinum nanoparticles and “mixed-valence” iron and nickel oxides
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10333810/
https://www.ncbi.nlm.nih.gov/pubmed/37441028
http://dx.doi.org/10.1039/d3ra03350c
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