Pyrolytic-deoxygenation of triglyceride via natural waste shell derived Ca(OH)2 nanocatalyst

Cracking-Deoxygenation process is one of the important reaction pathways for the production of biofuel with desirable n-C17 hydrocarbon chain via removal of oxygen compounds. Calcium-based catalyst has attracted much attention in deoxygenation process due its relatively high capacity in removing oxy...

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Main Authors: Asikin-Mijan, N., Lee, H.V., Taufiq-Yap, Y.H., Juan, J.C., Rahman, N.A.
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Language:English
Published: 2017
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spelling my.uniten.dspace-34712020-06-29T04:07:43Z Pyrolytic-deoxygenation of triglyceride via natural waste shell derived Ca(OH)2 nanocatalyst Asikin-Mijan, N. Lee, H.V. Taufiq-Yap, Y.H. Juan, J.C. Rahman, N.A. Cracking-Deoxygenation process is one of the important reaction pathways for the production of biofuel with desirable n-C17 hydrocarbon chain via removal of oxygen compounds. Calcium-based catalyst has attracted much attention in deoxygenation process due its relatively high capacity in removing oxygenated compounds in the form of CO2 and CO under decarboxylation and decarbonylation reaction, respectively. In the present study, deoxygenation of triolein was investigated using Ca(OH)2 nanocatalyst derived from low cost natural waste shells. The Ca(OH)2 nanocatalyst was prepared via integration techniques between surfactant treatment (anionic and non-ionic) and wet sonochemical effect. Results showed that sonochemically assisted surfactant treatment has successfully enhanced the physicochemical properties of Ca(OH)2 nanocatalyst in terms of nano-particle sizes (∼50 nm), high surface area (∼130 m2 g-1), large porosity (∼18.6 nm) and strong basic strength. The presence of superior properties from surfactant treated Ca(OH)2 nanocatalysts rendered high deoxygenation degree, which are capable of producing high alkane and alkene selectivity in chain length of n-C17 (high value of C17/(n-C17 + n-C18) ratio = 0.88). Furthermore, both Ca(OH)2-EG and Ca(OH)2-CTAB nanocatalysts showed high reactivity with 47.37% and 44.50%, respectively in total liquid hydrocarbon content of triolein conversion with high H/C and low O/C ratio. © 2015 Elsevier B.V. All rights reserved. 2017-10-27T00:35:19Z 2017-10-27T00:35:19Z 2016 Article 10.1016/j.jaap.2015.12.017 en Journal of Analytical and Applied Pyrolysis Volume 117, 1 January 2016, Pages 46-55
institution Universiti Tenaga Nasional
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continent Asia
country Malaysia
content_provider Universiti Tenaga Nasional
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language English
description Cracking-Deoxygenation process is one of the important reaction pathways for the production of biofuel with desirable n-C17 hydrocarbon chain via removal of oxygen compounds. Calcium-based catalyst has attracted much attention in deoxygenation process due its relatively high capacity in removing oxygenated compounds in the form of CO2 and CO under decarboxylation and decarbonylation reaction, respectively. In the present study, deoxygenation of triolein was investigated using Ca(OH)2 nanocatalyst derived from low cost natural waste shells. The Ca(OH)2 nanocatalyst was prepared via integration techniques between surfactant treatment (anionic and non-ionic) and wet sonochemical effect. Results showed that sonochemically assisted surfactant treatment has successfully enhanced the physicochemical properties of Ca(OH)2 nanocatalyst in terms of nano-particle sizes (∼50 nm), high surface area (∼130 m2 g-1), large porosity (∼18.6 nm) and strong basic strength. The presence of superior properties from surfactant treated Ca(OH)2 nanocatalysts rendered high deoxygenation degree, which are capable of producing high alkane and alkene selectivity in chain length of n-C17 (high value of C17/(n-C17 + n-C18) ratio = 0.88). Furthermore, both Ca(OH)2-EG and Ca(OH)2-CTAB nanocatalysts showed high reactivity with 47.37% and 44.50%, respectively in total liquid hydrocarbon content of triolein conversion with high H/C and low O/C ratio. © 2015 Elsevier B.V. All rights reserved.
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author Asikin-Mijan, N.
Lee, H.V.
Taufiq-Yap, Y.H.
Juan, J.C.
Rahman, N.A.
spellingShingle Asikin-Mijan, N.
Lee, H.V.
Taufiq-Yap, Y.H.
Juan, J.C.
Rahman, N.A.
Pyrolytic-deoxygenation of triglyceride via natural waste shell derived Ca(OH)2 nanocatalyst
author_facet Asikin-Mijan, N.
Lee, H.V.
Taufiq-Yap, Y.H.
Juan, J.C.
Rahman, N.A.
author_sort Asikin-Mijan, N.
title Pyrolytic-deoxygenation of triglyceride via natural waste shell derived Ca(OH)2 nanocatalyst
title_short Pyrolytic-deoxygenation of triglyceride via natural waste shell derived Ca(OH)2 nanocatalyst
title_full Pyrolytic-deoxygenation of triglyceride via natural waste shell derived Ca(OH)2 nanocatalyst
title_fullStr Pyrolytic-deoxygenation of triglyceride via natural waste shell derived Ca(OH)2 nanocatalyst
title_full_unstemmed Pyrolytic-deoxygenation of triglyceride via natural waste shell derived Ca(OH)2 nanocatalyst
title_sort pyrolytic-deoxygenation of triglyceride via natural waste shell derived ca(oh)2 nanocatalyst
publishDate 2017
_version_ 1671342874968457216
score 13.211869