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Bimetallic Pd(96)Fe(4) nanodendrites embedded in graphitic carbon nanosheets as highly efficient anode electrocatalysts

A facile route to anchor a nanoalloy catalyst on graphitic carbon nanosheets (GCNs) has been developed for preparing high-performance electrode materials for application in direct alcohol fuel cells (DAFCs). Uniformly dispersed bimetallic Pd–Fe nanoparticles (NPs) with tunable composition have been...

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Autores principales: Ghosh, Srabanti, Bysakh, Sandip, Basu, Rajendra Nath
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9417808/
https://www.ncbi.nlm.nih.gov/pubmed/36132105
http://dx.doi.org/10.1039/c9na00317g
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author Ghosh, Srabanti
Bysakh, Sandip
Basu, Rajendra Nath
author_facet Ghosh, Srabanti
Bysakh, Sandip
Basu, Rajendra Nath
author_sort Ghosh, Srabanti
collection PubMed
description A facile route to anchor a nanoalloy catalyst on graphitic carbon nanosheets (GCNs) has been developed for preparing high-performance electrode materials for application in direct alcohol fuel cells (DAFCs). Uniformly dispersed bimetallic Pd–Fe nanoparticles (NPs) with tunable composition have been immobilized on GCNs derived from mesocarbon microbeads (MCMBs) by a one-pot radiolytic reduction method. The Pd–Fe/GCN hybrid shows promising electrocatalytic activity for the methanol, ethanol, ethylene glycol, tri-ethylene glycol and glycerol oxidation reactions in alkaline medium. The as-prepared flower-shape Pd(96)Fe(4)/GCN nanohybrids have high mass activity for the ethanol oxidation reaction (EOR), which is ∼36 times (11 A per mg Pd) higher than that of their monometallic counterparts. Moreover, the onset oxidation potential for the EOR on the Pd(96)Fe(4)/GCN nanohybrids negatively shifts ca. 780 mV compared to that on commercial Pd/C electrocatalysts, suggesting fast kinetics and superior electrocatalytic activity. Additionally, chronoamperometry measurements display good long-term cycling stability of the Pd(96)Fe(4)/GCN nanohybrids for the EOR and also demonstrate only ∼7% loss in forward current density after 1000 cycles. The superior catalytic activity and stability may have originated from the modified electronic structure of the Pd–Fe nanoalloys and excellent physicochemical properties of the graphitic nanosheets. The present synthetic route using GCNs as the supporting material will contribute to further design of multimetallic nanoarchitectures with controlled composition and desired functions for fuel cell applications.
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spelling pubmed-94178082022-09-20 Bimetallic Pd(96)Fe(4) nanodendrites embedded in graphitic carbon nanosheets as highly efficient anode electrocatalysts Ghosh, Srabanti Bysakh, Sandip Basu, Rajendra Nath Nanoscale Adv Chemistry A facile route to anchor a nanoalloy catalyst on graphitic carbon nanosheets (GCNs) has been developed for preparing high-performance electrode materials for application in direct alcohol fuel cells (DAFCs). Uniformly dispersed bimetallic Pd–Fe nanoparticles (NPs) with tunable composition have been immobilized on GCNs derived from mesocarbon microbeads (MCMBs) by a one-pot radiolytic reduction method. The Pd–Fe/GCN hybrid shows promising electrocatalytic activity for the methanol, ethanol, ethylene glycol, tri-ethylene glycol and glycerol oxidation reactions in alkaline medium. The as-prepared flower-shape Pd(96)Fe(4)/GCN nanohybrids have high mass activity for the ethanol oxidation reaction (EOR), which is ∼36 times (11 A per mg Pd) higher than that of their monometallic counterparts. Moreover, the onset oxidation potential for the EOR on the Pd(96)Fe(4)/GCN nanohybrids negatively shifts ca. 780 mV compared to that on commercial Pd/C electrocatalysts, suggesting fast kinetics and superior electrocatalytic activity. Additionally, chronoamperometry measurements display good long-term cycling stability of the Pd(96)Fe(4)/GCN nanohybrids for the EOR and also demonstrate only ∼7% loss in forward current density after 1000 cycles. The superior catalytic activity and stability may have originated from the modified electronic structure of the Pd–Fe nanoalloys and excellent physicochemical properties of the graphitic nanosheets. The present synthetic route using GCNs as the supporting material will contribute to further design of multimetallic nanoarchitectures with controlled composition and desired functions for fuel cell applications. RSC 2019-08-19 /pmc/articles/PMC9417808/ /pubmed/36132105 http://dx.doi.org/10.1039/c9na00317g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Ghosh, Srabanti
Bysakh, Sandip
Basu, Rajendra Nath
Bimetallic Pd(96)Fe(4) nanodendrites embedded in graphitic carbon nanosheets as highly efficient anode electrocatalysts
title Bimetallic Pd(96)Fe(4) nanodendrites embedded in graphitic carbon nanosheets as highly efficient anode electrocatalysts
title_full Bimetallic Pd(96)Fe(4) nanodendrites embedded in graphitic carbon nanosheets as highly efficient anode electrocatalysts
title_fullStr Bimetallic Pd(96)Fe(4) nanodendrites embedded in graphitic carbon nanosheets as highly efficient anode electrocatalysts
title_full_unstemmed Bimetallic Pd(96)Fe(4) nanodendrites embedded in graphitic carbon nanosheets as highly efficient anode electrocatalysts
title_short Bimetallic Pd(96)Fe(4) nanodendrites embedded in graphitic carbon nanosheets as highly efficient anode electrocatalysts
title_sort bimetallic pd(96)fe(4) nanodendrites embedded in graphitic carbon nanosheets as highly efficient anode electrocatalysts
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9417808/
https://www.ncbi.nlm.nih.gov/pubmed/36132105
http://dx.doi.org/10.1039/c9na00317g
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AT basurajendranath bimetallicpd96fe4nanodendritesembeddedingraphiticcarbonnanosheetsashighlyefficientanodeelectrocatalysts