Ethyl levulinate synthesis from levulinic acid and furfuryl alcohol by using modified carbon cryogel

The research on ethyl levulinate synthesis is now increased due to its potential to be derived from biomass and for applications in biofuel. In the present work, model compound of biomass-derived intermediates, levulinic acid and furfural alcohol, were utilized for ethyl levulinate synthesis using m...

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Main Authors: Zainol, M. M., Nazreen, W. A., Ylang, P. I. P., Hoe, T. T., Yussuf, M. A. M., Amin, N. A. S.
Format: Article
Published: Italian Association of Chemical Engineering - AIDIC 2020
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Online Access:http://eprints.utm.my/id/eprint/87903/
http://www.dx.doi.org/10.3303/CET2078092
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spelling my.utm.879032020-11-30T13:36:43Z http://eprints.utm.my/id/eprint/87903/ Ethyl levulinate synthesis from levulinic acid and furfuryl alcohol by using modified carbon cryogel Zainol, M. M. Nazreen, W. A. Ylang, P. I. P. Hoe, T. T. Yussuf, M. A. M. Amin, N. A. S. TP Chemical technology The research on ethyl levulinate synthesis is now increased due to its potential to be derived from biomass and for applications in biofuel. In the present work, model compound of biomass-derived intermediates, levulinic acid and furfural alcohol, were utilized for ethyl levulinate synthesis using modified carbon cryogel. Carbon cryogel produced from urea and furfural (UCC) mixtures was modified via sulfonation (UCC-S) and subsequently doped with Fe (UCC-S-Fe) to increase the surface chemistry of the reaction. In order to study the acidity and phase structure of the catalyst, the UCC-S and UCC-S-Fe were characterized by using NH3- TPD and XRD. The ethanolysis of levulinic acid and furfuryl alcohol were conducted in a batch reaction system for the catalytic testing experiment by study the effect of reaction time and catalyst loading. At the selected conditions, with UCC-S as the catalyst, a high ethyl levulinate yield of 99.5 mol% was obtained from ethanolysis of levulinic acid using 10 wt% of a catalyst loading for 4 h. Although UCC-S catalyst gives low ethyl levulinate yield from ethanolysis of furfuryl alcohol, a high yield ethyl levulinate of 97.8 mol% was observed within 5 h of reaction time by applying 20 wt% of UCC-S-Fe catalyst loading. Thus, the modification of urea-furfural carbon cryogel via sulfonation and Fe-doping have improved the properties of carbon cryogel and performed as a promising solid acid catalyst for ethyl levulinate production. However, different activity performances were demonstrated by the two catalysts in the ethanolysis reactions of levulinic acid and furfuryl alcohol. Italian Association of Chemical Engineering - AIDIC 2020 Article PeerReviewed Zainol, M. M. and Nazreen, W. A. and Ylang, P. I. P. and Hoe, T. T. and Yussuf, M. A. M. and Amin, N. A. S. (2020) Ethyl levulinate synthesis from levulinic acid and furfuryl alcohol by using modified carbon cryogel. Chemical Engineering Transactions, 78 . pp. 547-552. ISSN 2283-9216 http://www.dx.doi.org/10.3303/CET2078092 DOI: 10.3303/CET2078092
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TP Chemical technology
spellingShingle TP Chemical technology
Zainol, M. M.
Nazreen, W. A.
Ylang, P. I. P.
Hoe, T. T.
Yussuf, M. A. M.
Amin, N. A. S.
Ethyl levulinate synthesis from levulinic acid and furfuryl alcohol by using modified carbon cryogel
description The research on ethyl levulinate synthesis is now increased due to its potential to be derived from biomass and for applications in biofuel. In the present work, model compound of biomass-derived intermediates, levulinic acid and furfural alcohol, were utilized for ethyl levulinate synthesis using modified carbon cryogel. Carbon cryogel produced from urea and furfural (UCC) mixtures was modified via sulfonation (UCC-S) and subsequently doped with Fe (UCC-S-Fe) to increase the surface chemistry of the reaction. In order to study the acidity and phase structure of the catalyst, the UCC-S and UCC-S-Fe were characterized by using NH3- TPD and XRD. The ethanolysis of levulinic acid and furfuryl alcohol were conducted in a batch reaction system for the catalytic testing experiment by study the effect of reaction time and catalyst loading. At the selected conditions, with UCC-S as the catalyst, a high ethyl levulinate yield of 99.5 mol% was obtained from ethanolysis of levulinic acid using 10 wt% of a catalyst loading for 4 h. Although UCC-S catalyst gives low ethyl levulinate yield from ethanolysis of furfuryl alcohol, a high yield ethyl levulinate of 97.8 mol% was observed within 5 h of reaction time by applying 20 wt% of UCC-S-Fe catalyst loading. Thus, the modification of urea-furfural carbon cryogel via sulfonation and Fe-doping have improved the properties of carbon cryogel and performed as a promising solid acid catalyst for ethyl levulinate production. However, different activity performances were demonstrated by the two catalysts in the ethanolysis reactions of levulinic acid and furfuryl alcohol.
format Article
author Zainol, M. M.
Nazreen, W. A.
Ylang, P. I. P.
Hoe, T. T.
Yussuf, M. A. M.
Amin, N. A. S.
author_facet Zainol, M. M.
Nazreen, W. A.
Ylang, P. I. P.
Hoe, T. T.
Yussuf, M. A. M.
Amin, N. A. S.
author_sort Zainol, M. M.
title Ethyl levulinate synthesis from levulinic acid and furfuryl alcohol by using modified carbon cryogel
title_short Ethyl levulinate synthesis from levulinic acid and furfuryl alcohol by using modified carbon cryogel
title_full Ethyl levulinate synthesis from levulinic acid and furfuryl alcohol by using modified carbon cryogel
title_fullStr Ethyl levulinate synthesis from levulinic acid and furfuryl alcohol by using modified carbon cryogel
title_full_unstemmed Ethyl levulinate synthesis from levulinic acid and furfuryl alcohol by using modified carbon cryogel
title_sort ethyl levulinate synthesis from levulinic acid and furfuryl alcohol by using modified carbon cryogel
publisher Italian Association of Chemical Engineering - AIDIC
publishDate 2020
url http://eprints.utm.my/id/eprint/87903/
http://www.dx.doi.org/10.3303/CET2078092
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score 13.18916