Influence of zr additive on the chemical reduction behaviour of moo3 in carbon monoxide atmosphere

Temperature-programmed reduction (TPR) was used to observe the chemical reduction behaviour of molybdenum trioxide (MoO3) and zirconia (Zr)-doped MoO3 catalyst by using carbon monoxide (CO) as the reductant. The characterisation of catalysts was performed by X-ray diffraction (XRD), Brunauer-Emmett-...

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Published in:Solid State Phenomena
Main Author: Alinda S.; Mohd Nor L.; Norliza D.; Fairous S.; Maratun Najiha A.T.; Tengku Shafazila T.S.; Mohd. Ambar Y.
Format: Conference paper
Language:English
Published: Trans Tech Publications Ltd 2021
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85120525957&doi=10.4028%2fwww.scientific.net%2fSSP.317.173&partnerID=40&md5=26d6238625810dd19fb9a574de51a050
id 2-s2.0-85120525957
spelling 2-s2.0-85120525957
Alinda S.; Mohd Nor L.; Norliza D.; Fairous S.; Maratun Najiha A.T.; Tengku Shafazila T.S.; Mohd. Ambar Y.
Influence of zr additive on the chemical reduction behaviour of moo3 in carbon monoxide atmosphere
2021
Solid State Phenomena
317 SSP

10.4028/www.scientific.net/SSP.317.173
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85120525957&doi=10.4028%2fwww.scientific.net%2fSSP.317.173&partnerID=40&md5=26d6238625810dd19fb9a574de51a050
Temperature-programmed reduction (TPR) was used to observe the chemical reduction behaviour of molybdenum trioxide (MoO3) and zirconia (Zr)-doped MoO3 catalyst by using carbon monoxide (CO) as the reductant. The characterisation of catalysts was performed by X-ray diffraction (XRD), Brunauer-Emmett-Teller (BET) and transmission electron microscopy (TEM) analyses. The reduction performance were examined up to 700°C and reduction was continued for 60 min at 700°C in a stream of 20 vol. % CO in nitrogen. The TPR profile showed that the doped MoO3 catalyst was slightly moved to a higher temperature (580°C) as compared to the undoped MoO3 catalyst, which began at around 550°C. The interaction between zirconia and molybdenum ions in doped MoO3 catalyst led to an increase in the reduction temperature. According to characterisation of the reduction products by using XRD, it revealed that the reduction behaviour of pure MoO3 to MoO2 by CO reductant involved two reduction stages with the formation of Mo4O11 as the intermediate product. Meanwhile, MoO3 catalyst doped with zirconia caused a delay in the reduction process and was proven by the presence of Mo4O11 species at the end of reactions. Physical analysis by using BET showed a slight increase in surface area of 3% Zr-MoO3 from 6.85 m2/g to 7.24 m2/g. As for TEM analysis, black tiny spots located around MoO3 particles revealed that the zirconia was successfully intercalated into MoO3 particles. This confirmed that formation of intermetallic between Zr-MoO3 catalyst will give new chemical and physical properties which has a remarkable chemical effect by disturbing the reduction progression of MoO3 catalyst. © 2021 Trans Tech Publications Ltd, Switzerland.
Trans Tech Publications Ltd
10120394
English
Conference paper

author Alinda S.; Mohd Nor L.; Norliza D.; Fairous S.; Maratun Najiha A.T.; Tengku Shafazila T.S.; Mohd. Ambar Y.
spellingShingle Alinda S.; Mohd Nor L.; Norliza D.; Fairous S.; Maratun Najiha A.T.; Tengku Shafazila T.S.; Mohd. Ambar Y.
Influence of zr additive on the chemical reduction behaviour of moo3 in carbon monoxide atmosphere
author_facet Alinda S.; Mohd Nor L.; Norliza D.; Fairous S.; Maratun Najiha A.T.; Tengku Shafazila T.S.; Mohd. Ambar Y.
author_sort Alinda S.; Mohd Nor L.; Norliza D.; Fairous S.; Maratun Najiha A.T.; Tengku Shafazila T.S.; Mohd. Ambar Y.
title Influence of zr additive on the chemical reduction behaviour of moo3 in carbon monoxide atmosphere
title_short Influence of zr additive on the chemical reduction behaviour of moo3 in carbon monoxide atmosphere
title_full Influence of zr additive on the chemical reduction behaviour of moo3 in carbon monoxide atmosphere
title_fullStr Influence of zr additive on the chemical reduction behaviour of moo3 in carbon monoxide atmosphere
title_full_unstemmed Influence of zr additive on the chemical reduction behaviour of moo3 in carbon monoxide atmosphere
title_sort Influence of zr additive on the chemical reduction behaviour of moo3 in carbon monoxide atmosphere
publishDate 2021
container_title Solid State Phenomena
container_volume 317 SSP
container_issue
doi_str_mv 10.4028/www.scientific.net/SSP.317.173
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85120525957&doi=10.4028%2fwww.scientific.net%2fSSP.317.173&partnerID=40&md5=26d6238625810dd19fb9a574de51a050
description Temperature-programmed reduction (TPR) was used to observe the chemical reduction behaviour of molybdenum trioxide (MoO3) and zirconia (Zr)-doped MoO3 catalyst by using carbon monoxide (CO) as the reductant. The characterisation of catalysts was performed by X-ray diffraction (XRD), Brunauer-Emmett-Teller (BET) and transmission electron microscopy (TEM) analyses. The reduction performance were examined up to 700°C and reduction was continued for 60 min at 700°C in a stream of 20 vol. % CO in nitrogen. The TPR profile showed that the doped MoO3 catalyst was slightly moved to a higher temperature (580°C) as compared to the undoped MoO3 catalyst, which began at around 550°C. The interaction between zirconia and molybdenum ions in doped MoO3 catalyst led to an increase in the reduction temperature. According to characterisation of the reduction products by using XRD, it revealed that the reduction behaviour of pure MoO3 to MoO2 by CO reductant involved two reduction stages with the formation of Mo4O11 as the intermediate product. Meanwhile, MoO3 catalyst doped with zirconia caused a delay in the reduction process and was proven by the presence of Mo4O11 species at the end of reactions. Physical analysis by using BET showed a slight increase in surface area of 3% Zr-MoO3 from 6.85 m2/g to 7.24 m2/g. As for TEM analysis, black tiny spots located around MoO3 particles revealed that the zirconia was successfully intercalated into MoO3 particles. This confirmed that formation of intermetallic between Zr-MoO3 catalyst will give new chemical and physical properties which has a remarkable chemical effect by disturbing the reduction progression of MoO3 catalyst. © 2021 Trans Tech Publications Ltd, Switzerland.
publisher Trans Tech Publications Ltd
issn 10120394
language English
format Conference paper
accesstype
record_format scopus
collection Scopus
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