Performance study of Ni catalyst with quicklime (CaO) as CO2 adsorbent in palm kernel shell steam gasification for hydrogen production

There is a need to search for efficient material that reduce CO2 content and enhance the hydrogen composition in the product gas from biomass steam gasification particularly for large scale production. The present study was carried out to perform the characterization of commercial quicklime as CO2 a...

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Main Authors: Khan, Z., Yusup, S., Ahmad, M.M.
Format: Article
Published: Trans Tech Publications Ltd 2014
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-84904060175&doi=10.4028%2fwww.scientific.net%2fAMR.917.283&partnerID=40&md5=2822a8699d4cc41933886f3c04fece3d
http://eprints.utp.edu.my/32351/
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spelling my.utp.eprints.323512022-03-29T05:27:45Z Performance study of Ni catalyst with quicklime (CaO) as CO2 adsorbent in palm kernel shell steam gasification for hydrogen production Khan, Z. Yusup, S. Ahmad, M.M. There is a need to search for efficient material that reduce CO2 content and enhance the hydrogen composition in the product gas from biomass steam gasification particularly for large scale production. The present study was carried out to perform the characterization of commercial quicklime as CO2 absorbent and Ni powder as catalyst. The chemical composition of the materials perform using x-ray fluorescence (XRF) indicated high amount of CaO and Ni in the bulk samples. Using XRF and SEM analyses, it was found that both materials showed high crystalinity. The adsorption isotherm from physisorption analysis suggested that the materials exhibits Type II category according to the IUPAC classification scheme. These types of material exhibit mesoporous structure which was also verified by the pore size of the samples found via BET analysis. The BET surface area reported was 4.16 m2/g and 0.78 m2/g for quicklime and Ni powder, respectively. In conclusion, commercial quicklime has the potential as CO2 absorbent, based on the pore size and surface area. Conversely, the surface properties of the Ni powder were found relatively lower as compared to other commercial catalysts available for biomass steam gasification. © (2014) Trans Tech Publications, Switzerland. Trans Tech Publications Ltd 2014 Article NonPeerReviewed https://www.scopus.com/inward/record.uri?eid=2-s2.0-84904060175&doi=10.4028%2fwww.scientific.net%2fAMR.917.283&partnerID=40&md5=2822a8699d4cc41933886f3c04fece3d Khan, Z. and Yusup, S. and Ahmad, M.M. (2014) Performance study of Ni catalyst with quicklime (CaO) as CO2 adsorbent in palm kernel shell steam gasification for hydrogen production. Advanced Materials Research, 917 . pp. 283-291. http://eprints.utp.edu.my/32351/
institution Universiti Teknologi Petronas
building UTP Resource Centre
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Petronas
content_source UTP Institutional Repository
url_provider http://eprints.utp.edu.my/
description There is a need to search for efficient material that reduce CO2 content and enhance the hydrogen composition in the product gas from biomass steam gasification particularly for large scale production. The present study was carried out to perform the characterization of commercial quicklime as CO2 absorbent and Ni powder as catalyst. The chemical composition of the materials perform using x-ray fluorescence (XRF) indicated high amount of CaO and Ni in the bulk samples. Using XRF and SEM analyses, it was found that both materials showed high crystalinity. The adsorption isotherm from physisorption analysis suggested that the materials exhibits Type II category according to the IUPAC classification scheme. These types of material exhibit mesoporous structure which was also verified by the pore size of the samples found via BET analysis. The BET surface area reported was 4.16 m2/g and 0.78 m2/g for quicklime and Ni powder, respectively. In conclusion, commercial quicklime has the potential as CO2 absorbent, based on the pore size and surface area. Conversely, the surface properties of the Ni powder were found relatively lower as compared to other commercial catalysts available for biomass steam gasification. © (2014) Trans Tech Publications, Switzerland.
format Article
author Khan, Z.
Yusup, S.
Ahmad, M.M.
spellingShingle Khan, Z.
Yusup, S.
Ahmad, M.M.
Performance study of Ni catalyst with quicklime (CaO) as CO2 adsorbent in palm kernel shell steam gasification for hydrogen production
author_facet Khan, Z.
Yusup, S.
Ahmad, M.M.
author_sort Khan, Z.
title Performance study of Ni catalyst with quicklime (CaO) as CO2 adsorbent in palm kernel shell steam gasification for hydrogen production
title_short Performance study of Ni catalyst with quicklime (CaO) as CO2 adsorbent in palm kernel shell steam gasification for hydrogen production
title_full Performance study of Ni catalyst with quicklime (CaO) as CO2 adsorbent in palm kernel shell steam gasification for hydrogen production
title_fullStr Performance study of Ni catalyst with quicklime (CaO) as CO2 adsorbent in palm kernel shell steam gasification for hydrogen production
title_full_unstemmed Performance study of Ni catalyst with quicklime (CaO) as CO2 adsorbent in palm kernel shell steam gasification for hydrogen production
title_sort performance study of ni catalyst with quicklime (cao) as co2 adsorbent in palm kernel shell steam gasification for hydrogen production
publisher Trans Tech Publications Ltd
publishDate 2014
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-84904060175&doi=10.4028%2fwww.scientific.net%2fAMR.917.283&partnerID=40&md5=2822a8699d4cc41933886f3c04fece3d
http://eprints.utp.edu.my/32351/
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