Methanol production from CO2 reduction over Ni/TiO2 catalyst
Photocatalytic reduction of carbon dioxide into methanol fuel over the Ni-doped TiO2 catalyst has been investigated. The experiments were carried out in a 50 ml batch reactor under UV irradiation. Ni/TiO2 photocatalysts were prepared by an impregnation method. The properties of the catalyst were cha...
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doaj-94e12e6628f642c2b35f8c37830778ef2020-12-23T05:02:09ZengElsevierEnergy Reports2352-48472020-12-01611621166Methanol production from CO2 reduction over Ni/TiO2 catalystPakpoom Athikaphan0Sutasinee Neramittagapong1Pornsawan Assawasaengrat2Arthit Neramittagapong3Department of Chemical Engineering, Faculty of Engineering, Khon Kaen University, Khon Kaen, 40002, ThailandDepartment of Chemical Engineering, Faculty of Engineering, Khon Kaen University, Khon Kaen, 40002, Thailand; Research Center for Environmental and Hazardous Substance Management (EHSM), Khon Kaen University, Khon Kaen, 40002, Thailand; Center of Excellence on Hazardous Substance Management (HSM), Pathumwan, Bangkok 10330, ThailandDepartment of Chemical Engineering, Faculty of Engineering, King Mongkut’s Institute of Technology Ladkrabang, Ladkrabang, Bangkok 10520, ThailandDepartment of Chemical Engineering, Faculty of Engineering, Khon Kaen University, Khon Kaen, 40002, Thailand; Research Center for Environmental and Hazardous Substance Management (EHSM), Khon Kaen University, Khon Kaen, 40002, Thailand; Center of Excellence on Hazardous Substance Management (HSM), Pathumwan, Bangkok 10330, Thailand; Corresponding author at: Department of Chemical Engineering, Faculty of Engineering, Khon Kaen University, Khon Kaen, 40002, Thailand.Photocatalytic reduction of carbon dioxide into methanol fuel over the Ni-doped TiO2 catalyst has been investigated. The experiments were carried out in a 50 ml batch reactor under UV irradiation. Ni/TiO2 photocatalysts were prepared by an impregnation method. The properties of the catalyst were characterized by X-ray photoelectron spectroscopy (XPS), UV–Vis diffuse reflectance (UV–DR). Moreover, the effect of reaction time and Ni loading on the methanol conversion were investigated. The result indicated that the maximum of methanol production was obtained after the irradiation of 3 h and slightly reduced due to the methanol oxidation process. The Ni loading catalyst showed the higher methanol concentration than that over undoped TiO2 because Ni could trap the electron during irradiation and reduce electron–hole pair recombination by the p–n junction of TiO2. The highest methanol production rate of 272.45μmol/gcatwas obtained over 4% wt Ni/TiO2 catalyst, which was 20 times higher methanol production rate than that over the commercial TiO2 catalyst (P25). Moreover, the stability of catalysts could be recycled four times with high activity of CO2 reduction to methanol. Therefore, 4% wt. Ni/TiO2 catalyst, low cost, showed better potential and activity in reducing CO2 emission to the environment.http://www.sciencedirect.com/science/article/pii/S2352484720314840Artificial photosynthesisNi metalPreparation of catalystImpregnationRenewable energy |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Pakpoom Athikaphan Sutasinee Neramittagapong Pornsawan Assawasaengrat Arthit Neramittagapong |
spellingShingle |
Pakpoom Athikaphan Sutasinee Neramittagapong Pornsawan Assawasaengrat Arthit Neramittagapong Methanol production from CO2 reduction over Ni/TiO2 catalyst Energy Reports Artificial photosynthesis Ni metal Preparation of catalyst Impregnation Renewable energy |
author_facet |
Pakpoom Athikaphan Sutasinee Neramittagapong Pornsawan Assawasaengrat Arthit Neramittagapong |
author_sort |
Pakpoom Athikaphan |
title |
Methanol production from CO2 reduction over Ni/TiO2 catalyst |
title_short |
Methanol production from CO2 reduction over Ni/TiO2 catalyst |
title_full |
Methanol production from CO2 reduction over Ni/TiO2 catalyst |
title_fullStr |
Methanol production from CO2 reduction over Ni/TiO2 catalyst |
title_full_unstemmed |
Methanol production from CO2 reduction over Ni/TiO2 catalyst |
title_sort |
methanol production from co2 reduction over ni/tio2 catalyst |
publisher |
Elsevier |
series |
Energy Reports |
issn |
2352-4847 |
publishDate |
2020-12-01 |
description |
Photocatalytic reduction of carbon dioxide into methanol fuel over the Ni-doped TiO2 catalyst has been investigated. The experiments were carried out in a 50 ml batch reactor under UV irradiation. Ni/TiO2 photocatalysts were prepared by an impregnation method. The properties of the catalyst were characterized by X-ray photoelectron spectroscopy (XPS), UV–Vis diffuse reflectance (UV–DR). Moreover, the effect of reaction time and Ni loading on the methanol conversion were investigated. The result indicated that the maximum of methanol production was obtained after the irradiation of 3 h and slightly reduced due to the methanol oxidation process. The Ni loading catalyst showed the higher methanol concentration than that over undoped TiO2 because Ni could trap the electron during irradiation and reduce electron–hole pair recombination by the p–n junction of TiO2. The highest methanol production rate of 272.45μmol/gcatwas obtained over 4% wt Ni/TiO2 catalyst, which was 20 times higher methanol production rate than that over the commercial TiO2 catalyst (P25). Moreover, the stability of catalysts could be recycled four times with high activity of CO2 reduction to methanol. Therefore, 4% wt. Ni/TiO2 catalyst, low cost, showed better potential and activity in reducing CO2 emission to the environment. |
topic |
Artificial photosynthesis Ni metal Preparation of catalyst Impregnation Renewable energy |
url |
http://www.sciencedirect.com/science/article/pii/S2352484720314840 |
work_keys_str_mv |
AT pakpoomathikaphan methanolproductionfromco2reductionovernitio2catalyst AT sutasineeneramittagapong methanolproductionfromco2reductionovernitio2catalyst AT pornsawanassawasaengrat methanolproductionfromco2reductionovernitio2catalyst AT arthitneramittagapong methanolproductionfromco2reductionovernitio2catalyst |
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1724373402014187520 |