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Bimetallic nickel/manganese phosphate–carbon nanofiber electrocatalyst for the oxidation of formaldehyde in alkaline medium

The development of earth-abundant transition metal-based catalysts, supported by a conductive carbonaceous matrix, has received great attention in the field of conversion of formaldehyde derivatives into toxic-free species. Herein, we report a comprehensive investigation of bimetallic electrocatalys...

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Autores principales: Elghamry, Ibrahim, Al-Jendan, Samya A., Saleh, M. M., Abdelsalam, Mamdouh E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9292137/
https://www.ncbi.nlm.nih.gov/pubmed/35919157
http://dx.doi.org/10.1039/d2ra03359c
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author Elghamry, Ibrahim
Al-Jendan, Samya A.
Saleh, M. M.
Abdelsalam, Mamdouh E.
author_facet Elghamry, Ibrahim
Al-Jendan, Samya A.
Saleh, M. M.
Abdelsalam, Mamdouh E.
author_sort Elghamry, Ibrahim
collection PubMed
description The development of earth-abundant transition metal-based catalysts, supported by a conductive carbonaceous matrix, has received great attention in the field of conversion of formaldehyde derivatives into toxic-free species. Herein, we report a comprehensive investigation of bimetallic electrocatalyst activity towards the electrooxidation of formaldehyde. The bimetallic phosphate catalyst is prepared by co-precipitation of Ni and Mn phosphate precursors using a simple reflux approach. Then the bimetallic catalyst is produced by mixing the Ni/Mn with carbon fibres (CNFs). The structural properties and crystallinity of the catalyst were investigated by using several techniques, such as scanning electron microscopy, X-ray diffraction, energy-dispersive X-ray spectroscopy, and Brunauer Emmett−Teller theory. The system performance was studied under potentiostatic conditions. Some theoretical thermodynamic and kinetic models were applied to assess the system performance. Accordingly, key electrochemical parameters, including surface coverage (Γ) of active species, charge transfer rate (k(s)), diffusion coefficient of the formaldehyde (D), and catalytic rate constant (k(cat)) were calculated at Γ = 1.690 × 10(−4) mmol cm(−2), k(s) = 1.0800 s(−1), D = 1.185 × 10(−3) cm(2) s(−1) and k(cat) = 1.08 × 10(5) cm(3) mol(−1) s(−1). These findings demonstrate the intrinsic electrocatalytic activity of formaldehyde electrooxidation on nickel/manganese phosphate- CNFs in alkaline medium.
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spelling pubmed-92921372022-08-01 Bimetallic nickel/manganese phosphate–carbon nanofiber electrocatalyst for the oxidation of formaldehyde in alkaline medium Elghamry, Ibrahim Al-Jendan, Samya A. Saleh, M. M. Abdelsalam, Mamdouh E. RSC Adv Chemistry The development of earth-abundant transition metal-based catalysts, supported by a conductive carbonaceous matrix, has received great attention in the field of conversion of formaldehyde derivatives into toxic-free species. Herein, we report a comprehensive investigation of bimetallic electrocatalyst activity towards the electrooxidation of formaldehyde. The bimetallic phosphate catalyst is prepared by co-precipitation of Ni and Mn phosphate precursors using a simple reflux approach. Then the bimetallic catalyst is produced by mixing the Ni/Mn with carbon fibres (CNFs). The structural properties and crystallinity of the catalyst were investigated by using several techniques, such as scanning electron microscopy, X-ray diffraction, energy-dispersive X-ray spectroscopy, and Brunauer Emmett−Teller theory. The system performance was studied under potentiostatic conditions. Some theoretical thermodynamic and kinetic models were applied to assess the system performance. Accordingly, key electrochemical parameters, including surface coverage (Γ) of active species, charge transfer rate (k(s)), diffusion coefficient of the formaldehyde (D), and catalytic rate constant (k(cat)) were calculated at Γ = 1.690 × 10(−4) mmol cm(−2), k(s) = 1.0800 s(−1), D = 1.185 × 10(−3) cm(2) s(−1) and k(cat) = 1.08 × 10(5) cm(3) mol(−1) s(−1). These findings demonstrate the intrinsic electrocatalytic activity of formaldehyde electrooxidation on nickel/manganese phosphate- CNFs in alkaline medium. The Royal Society of Chemistry 2022-07-18 /pmc/articles/PMC9292137/ /pubmed/35919157 http://dx.doi.org/10.1039/d2ra03359c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Elghamry, Ibrahim
Al-Jendan, Samya A.
Saleh, M. M.
Abdelsalam, Mamdouh E.
Bimetallic nickel/manganese phosphate–carbon nanofiber electrocatalyst for the oxidation of formaldehyde in alkaline medium
title Bimetallic nickel/manganese phosphate–carbon nanofiber electrocatalyst for the oxidation of formaldehyde in alkaline medium
title_full Bimetallic nickel/manganese phosphate–carbon nanofiber electrocatalyst for the oxidation of formaldehyde in alkaline medium
title_fullStr Bimetallic nickel/manganese phosphate–carbon nanofiber electrocatalyst for the oxidation of formaldehyde in alkaline medium
title_full_unstemmed Bimetallic nickel/manganese phosphate–carbon nanofiber electrocatalyst for the oxidation of formaldehyde in alkaline medium
title_short Bimetallic nickel/manganese phosphate–carbon nanofiber electrocatalyst for the oxidation of formaldehyde in alkaline medium
title_sort bimetallic nickel/manganese phosphate–carbon nanofiber electrocatalyst for the oxidation of formaldehyde in alkaline medium
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9292137/
https://www.ncbi.nlm.nih.gov/pubmed/35919157
http://dx.doi.org/10.1039/d2ra03359c
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AT salehmm bimetallicnickelmanganesephosphatecarbonnanofiberelectrocatalystfortheoxidationofformaldehydeinalkalinemedium
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