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Cobalt Colloid-derived Efficient and Durable Nanoscale Electrocatalytic Films for High-Activity Water Oxidation

[Image: see text] Oxygen evolution reaction is of immense importance and is vitally necessary for devices such as electrolyzers, fuel cells, and other solar and chemical energy conversion devices. The major challenges that remain in this quest are due to the lack of effective catalytic assemblages o...

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Autores principales: Babar, Noor-Ul-Ain, Joya, Khurram Saleem
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7240820/
https://www.ncbi.nlm.nih.gov/pubmed/32455183
http://dx.doi.org/10.1021/acsomega.9b03576
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author Babar, Noor-Ul-Ain
Joya, Khurram Saleem
author_facet Babar, Noor-Ul-Ain
Joya, Khurram Saleem
author_sort Babar, Noor-Ul-Ain
collection PubMed
description [Image: see text] Oxygen evolution reaction is of immense importance and is vitally necessary for devices such as electrolyzers, fuel cells, and other solar and chemical energy conversion devices. The major challenges that remain in this quest are due to the lack of effective catalytic assemblages operating with optimum efficiency and obtainable following much simpler setups and easily accessible methods. Here, we demonstrate that the robust electrocatalytic activity toward water oxidation can be achieved employing straightforwardly obtainable nanoscale electrocatalysts derived from easily made colloidal-cobalt nanoparticles (Co-CNPs) prepared in clean carbonate systems. Thin-film non-noble metal nanoscale electrocatalysts such as simple Co-CNPs/FTO and annealed Co-CNPs/FTO(250) and Co-CNPs/FTO(500) obtained by depositing Co-CNPs on the FTO substrate are shown to initiate water oxidation at much lower overpotentials such as just 240 mV for Co-CNPs/FTO(250) under mildly alkaline conditions while demonstrating an impressive Tafel slope of just 40 mV dec(–1). Furthermore, the robust catalyst demonstrated a high electrochemical surface area of 91 cm(2) and high turnover frequency and mass activity of 0.26 s(–1) and 18.84 mA mg(–1), respectively, just at 0.35 V, and superior durability during long-term electrolysis. These outstanding catalytic outcomes using easily prepared Co-CNPs/FTO(250)-type catalytic systems are comparable and even better than other noble and non-noble metal-based nanoscale catalytic assemblages obtained by much difficult methods. Most advantageously, the colloidal route also offers the easiest approach of incorporating carbon contents in the catalytic layer, which can ultimately increase mechanical stability and mass transfer capability of the system.
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spelling pubmed-72408202020-05-22 Cobalt Colloid-derived Efficient and Durable Nanoscale Electrocatalytic Films for High-Activity Water Oxidation Babar, Noor-Ul-Ain Joya, Khurram Saleem ACS Omega [Image: see text] Oxygen evolution reaction is of immense importance and is vitally necessary for devices such as electrolyzers, fuel cells, and other solar and chemical energy conversion devices. The major challenges that remain in this quest are due to the lack of effective catalytic assemblages operating with optimum efficiency and obtainable following much simpler setups and easily accessible methods. Here, we demonstrate that the robust electrocatalytic activity toward water oxidation can be achieved employing straightforwardly obtainable nanoscale electrocatalysts derived from easily made colloidal-cobalt nanoparticles (Co-CNPs) prepared in clean carbonate systems. Thin-film non-noble metal nanoscale electrocatalysts such as simple Co-CNPs/FTO and annealed Co-CNPs/FTO(250) and Co-CNPs/FTO(500) obtained by depositing Co-CNPs on the FTO substrate are shown to initiate water oxidation at much lower overpotentials such as just 240 mV for Co-CNPs/FTO(250) under mildly alkaline conditions while demonstrating an impressive Tafel slope of just 40 mV dec(–1). Furthermore, the robust catalyst demonstrated a high electrochemical surface area of 91 cm(2) and high turnover frequency and mass activity of 0.26 s(–1) and 18.84 mA mg(–1), respectively, just at 0.35 V, and superior durability during long-term electrolysis. These outstanding catalytic outcomes using easily prepared Co-CNPs/FTO(250)-type catalytic systems are comparable and even better than other noble and non-noble metal-based nanoscale catalytic assemblages obtained by much difficult methods. Most advantageously, the colloidal route also offers the easiest approach of incorporating carbon contents in the catalytic layer, which can ultimately increase mechanical stability and mass transfer capability of the system. American Chemical Society 2020-05-07 /pmc/articles/PMC7240820/ /pubmed/32455183 http://dx.doi.org/10.1021/acsomega.9b03576 Text en Copyright © 2020 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Babar, Noor-Ul-Ain
Joya, Khurram Saleem
Cobalt Colloid-derived Efficient and Durable Nanoscale Electrocatalytic Films for High-Activity Water Oxidation
title Cobalt Colloid-derived Efficient and Durable Nanoscale Electrocatalytic Films for High-Activity Water Oxidation
title_full Cobalt Colloid-derived Efficient and Durable Nanoscale Electrocatalytic Films for High-Activity Water Oxidation
title_fullStr Cobalt Colloid-derived Efficient and Durable Nanoscale Electrocatalytic Films for High-Activity Water Oxidation
title_full_unstemmed Cobalt Colloid-derived Efficient and Durable Nanoscale Electrocatalytic Films for High-Activity Water Oxidation
title_short Cobalt Colloid-derived Efficient and Durable Nanoscale Electrocatalytic Films for High-Activity Water Oxidation
title_sort cobalt colloid-derived efficient and durable nanoscale electrocatalytic films for high-activity water oxidation
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7240820/
https://www.ncbi.nlm.nih.gov/pubmed/32455183
http://dx.doi.org/10.1021/acsomega.9b03576
work_keys_str_mv AT babarnoorulain cobaltcolloidderivedefficientanddurablenanoscaleelectrocatalyticfilmsforhighactivitywateroxidation
AT joyakhurramsaleem cobaltcolloidderivedefficientanddurablenanoscaleelectrocatalyticfilmsforhighactivitywateroxidation