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HERO ID
7697504
Reference Type
Journal Article
Title
Vitamin B-12 Plus Graphene Based Bio-Electrocatalyst for Electroreduction of Halocarbons in 1-Butyl-3-Methylimidazolium Tetrafluoroborate: A Special Use of the Synergism between Graphene, Ionic Liquid and Vitamin B-12
Author(s)
Pandit, SA; Rather, MA; Bhat, SA; Ingole, PP; Bhat, MA; ,
Year
2021
Is Peer Reviewed?
1
Journal
Russian Journal of Electrochemistry
ISSN:
1023-1935
EISSN:
1608-3342
Publisher
PLEIADES PUBLISHING INC
Location
NEW YORK
Volume
57
Issue
3
Page Numbers
214-227
Language
English
DOI
10.1134/S1023193521030101
Web of Science Id
WOS:000644644800002
URL
https://link.springer.com/10.1134/S1023193521030101
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Abstract
A bio-functional composite of vitamin B-12 with graphene and ionic liquid in chitosan solution was prepared for the first time. The composite was tested for its spectroscopic and electrochemical signatures, which establish the presence of vitamin B-12 in its native structure, with its Co-metal centre accessible for heterogeneous electron transfer. Our electrochemical investigations establish that with 1-butyl-3-methylimidazolium tetrafluoroborate (BMImBF(4)) as electrolyte, the Co(III) metal centre of the biocomposite film can be reduced to electrocatalytically active Co(I) at potentials that are significantly less negative than that reported for solution phase vitamin B-12. The biocomposite modified electrode was observed to exhibit excellent electrocatalytic activity toward the electroreduction of halocarbons viz. benzyl bromide, dibromoethane and trichloroacetic acid. The presented investigations indicate that the biocomposite modified electrode minimizes the probability for undesired solution phase reactions of electrogenerated reactive intermediates during electroreduction of dihaloalkanes. This feature is expected to have profound implications on product profile/yield for selective electroreductive reactions of dihaloalkanes. Our comparative electrocatalytic activity investigations for the chosen halocarbons suggest a synergistic activity of the components employed for the fabrication of the biocomposite modified electrode.
Keywords
biocomposite; electrocatalysis; halohydrocarbons; vitamin B12
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