dc.contributor.author |
Mukherjee, A. |
|
dc.contributor.author |
Su, W.N. |
|
dc.contributor.author |
Pan, C.J. |
|
dc.contributor.author |
Basu, S. |
|
dc.date.accessioned |
2023-07-28T05:00:43Z |
|
dc.date.available |
2023-07-28T05:00:43Z |
|
dc.date.issued |
2021 |
|
dc.identifier.citation |
Journal of Electroanalytical Chemistry, 882, 2021: 115006 |
|
dc.identifier.issn |
1572-6657 |
|
dc.identifier.uri |
http://ore.immt.res.in/handle/2018/2904 |
|
dc.description.abstract |
A facile one pot synthesis route has been adopted for Pd@CuO/C core-shell nanostructure for ethylene glycol oxidation. Pd nanoparticles are embedded in the porous CuO shell through an intermediate redox reaction leading to the formation of Pd@CuO/C core-shell nanostructure. The crystallinity, surface chemistry, bonding environment, morphology and surface area of the synthesized nanostructure has been characterised by X-ray diffraction, X-ray photoelectron spectroscopy, X-ray absorbance spectroscopy, transmission electron microscopy, and Brunauer-EmmettTeller analysis. The observed results indicated that a uniform dispersion of Pd@CuO core-shell nanostructure on functionalised carbon have an average size of similar to 8.5 nm. The nanostructure of Pd covered by a CuO enriched shell in carbon support (Pd@CuO/C) shows enhanced electro-catalytic performance, e.g. 2.3 Limes forward peak current density, 2.9 times mass activity, and 2 times specific activity towards ethylene glycol oxidation in alkaline media than that by Pd/C. The onset potential is 110 mV more negative in Pd@CuO/C than Pd/C. Further, Pd@CuO/C exhibit much lower Tafel slope (96.34 mV/dec) and charge transfer resistance (R-ct) than Pd/C, signifying faster charge transport in ethylene glycol oxidation reaction. The enhancement of electrocatalytic activity, excellent stability and durability towards ethylene glycol oxidation in Pd@CuO/C compared to different types of Pd nano, bimetallic and different substrate is attributed to the modification of the electronic structure of Pd and CuO due to the formation of core-shell nanostructure. |
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dc.language |
en |
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dc.publisher |
Elsevier |
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dc.relation.isreferencedby |
SCI |
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dc.rights |
Copyright [2021]. All efforts have been made to respect the copyright to the best of our knowledge. Inadvertent omissions, if brought to our notice, stand for correction and withdrawal of document from this repository. |
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dc.subject |
Chemical Sciences |
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dc.subject |
Electrochemistry |
|
dc.title |
One pot synthesis of Pd@CuO core-shell nanoparticles for electro catalytic oxidation of ethylene glycol for alkaline direct fuel cell |
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dc.type |
Journal Article |
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dc.affiliation.author |
IIT Delhi, New Delhi 110016, India |
|