Transformation of Sodium Bicarbonate and CO2 into Sodium Formate over NiPd Nanoparticle Catalyst

The present research systematically investigated, for the first time, the transformation of sodium bicarbonate and CO2 into sodium formate over a series of Ni based metal nanoparticles (NPs). Ni NPs and eight NiM (M stands for a second metal) NPs were prepared by a facile wet chemical process and th...

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Main Authors: Mengnan eWang, Jiaguang eZhang, Ning eYan
Format: Article
Language:English
Published: Frontiers Media S.A. 2013-09-01
Series:Frontiers in Chemistry
Subjects:
Online Access:http://journal.frontiersin.org/Journal/10.3389/fchem.2013.00017/full
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spelling doaj-dbf7ac99ba594243a054501fad37ad352020-11-24T22:25:49ZengFrontiers Media S.A.Frontiers in Chemistry2296-26462013-09-01110.3389/fchem.2013.0001756263Transformation of Sodium Bicarbonate and CO2 into Sodium Formate over NiPd Nanoparticle CatalystMengnan eWang0Jiaguang eZhang1Ning eYan2National University of SingaporeNational University of SingaporeNational University of SingaporeThe present research systematically investigated, for the first time, the transformation of sodium bicarbonate and CO2 into sodium formate over a series of Ni based metal nanoparticles (NPs). Ni NPs and eight NiM (M stands for a second metal) NPs were prepared by a facile wet chemical process and then their catalytic performance were evaluated in sodium bicarbonate hydrogenation. Bimetallic NiPd NPs with a composition of 7:3 were found to be superior for this reaction, which are more active than both pure Ni and Pd NPs. Hot filtration experiment suggested the NPs to be the truly catalytic active species and kinetic analysis indicated the reaction mechanism to be different than most homogeneous catalysts. The enhanced activity of the bimetallic nanoparticles may be attributed to their smaller size and improved stability.http://journal.frontiersin.org/Journal/10.3389/fchem.2013.00017/fullCarbon DioxideHydrogenationNanoparticlesNickelPalladiumSodium Bicarbonate
collection DOAJ
language English
format Article
sources DOAJ
author Mengnan eWang
Jiaguang eZhang
Ning eYan
spellingShingle Mengnan eWang
Jiaguang eZhang
Ning eYan
Transformation of Sodium Bicarbonate and CO2 into Sodium Formate over NiPd Nanoparticle Catalyst
Frontiers in Chemistry
Carbon Dioxide
Hydrogenation
Nanoparticles
Nickel
Palladium
Sodium Bicarbonate
author_facet Mengnan eWang
Jiaguang eZhang
Ning eYan
author_sort Mengnan eWang
title Transformation of Sodium Bicarbonate and CO2 into Sodium Formate over NiPd Nanoparticle Catalyst
title_short Transformation of Sodium Bicarbonate and CO2 into Sodium Formate over NiPd Nanoparticle Catalyst
title_full Transformation of Sodium Bicarbonate and CO2 into Sodium Formate over NiPd Nanoparticle Catalyst
title_fullStr Transformation of Sodium Bicarbonate and CO2 into Sodium Formate over NiPd Nanoparticle Catalyst
title_full_unstemmed Transformation of Sodium Bicarbonate and CO2 into Sodium Formate over NiPd Nanoparticle Catalyst
title_sort transformation of sodium bicarbonate and co2 into sodium formate over nipd nanoparticle catalyst
publisher Frontiers Media S.A.
series Frontiers in Chemistry
issn 2296-2646
publishDate 2013-09-01
description The present research systematically investigated, for the first time, the transformation of sodium bicarbonate and CO2 into sodium formate over a series of Ni based metal nanoparticles (NPs). Ni NPs and eight NiM (M stands for a second metal) NPs were prepared by a facile wet chemical process and then their catalytic performance were evaluated in sodium bicarbonate hydrogenation. Bimetallic NiPd NPs with a composition of 7:3 were found to be superior for this reaction, which are more active than both pure Ni and Pd NPs. Hot filtration experiment suggested the NPs to be the truly catalytic active species and kinetic analysis indicated the reaction mechanism to be different than most homogeneous catalysts. The enhanced activity of the bimetallic nanoparticles may be attributed to their smaller size and improved stability.
topic Carbon Dioxide
Hydrogenation
Nanoparticles
Nickel
Palladium
Sodium Bicarbonate
url http://journal.frontiersin.org/Journal/10.3389/fchem.2013.00017/full
work_keys_str_mv AT mengnanewang transformationofsodiumbicarbonateandco2intosodiumformateovernipdnanoparticlecatalyst
AT jiaguangezhang transformationofsodiumbicarbonateandco2intosodiumformateovernipdnanoparticlecatalyst
AT ningeyan transformationofsodiumbicarbonateandco2intosodiumformateovernipdnanoparticlecatalyst
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