Effects of thermal treatment on carbon cryogel preparation for catalytic esterification of levulinic acid to ethyl levulinate

Organic catalyst, especially derived from lignocellulosic biomass, is currently being developed for application in reaction engineering. Lignin, a major constituent in biomass, is highly potential as carbon- based -derived catalyst. Carbon cryogel was prepared from acidic lignin-furfural mixtures vi...

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Main Authors: Zainol, M. M., Amin, N. A. S., Asmadi, M.
Format: Article
Published: Elsevier B.V. 2017
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Online Access:http://eprints.utm.my/id/eprint/76194/
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85026491068&doi=10.1016%2fj.fuproc.2017.07.028&partnerID=40&md5=7e2b3238cd357c334cc6e025b644ac51
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spelling my.utm.761942018-06-26T07:52:39Z http://eprints.utm.my/id/eprint/76194/ Effects of thermal treatment on carbon cryogel preparation for catalytic esterification of levulinic acid to ethyl levulinate Zainol, M. M. Amin, N. A. S. Asmadi, M. TP Chemical technology Organic catalyst, especially derived from lignocellulosic biomass, is currently being developed for application in reaction engineering. Lignin, a major constituent in biomass, is highly potential as carbon- based -derived catalyst. Carbon cryogel was prepared from acidic lignin-furfural mixtures via sol-gel polycondensation. The effect of carbonization and calcination on carbon cryogel preparation has been investigated in this study. The carbon cryogels were characterized using surface area analyzer and NH3-TPD. Based on the carbonization and calcination studies, the total surface area and acidity of the selected carbonized cryogel were 214.2 m2/g and 11.3 mmol/g, respectively while calcined cryogel were 426.5 m2/g and 16.1 mmol/g, respectively. The selected carbon cryogels were further characterized using TGA, FTIR, XRD and FESEM-EDX. Overall, the characterization results revealed calcined cryogel has higher thermal stability and stronger acid sites. Subsequently, the performance of calcined carbon cryogel prevailed in catalytic esterification of levulinic acid to ethyl levulinate. The esterification reaction was further investigated at different catalyst loading (5 to 35 wt%), molar ratio of ethanol to levulinic acid (5 to 30), time (1 to 8 h) and temperature (78 to 170 °C). At the optimum conditions, calcined cryogel evinced 87.2% and 86.5 mol% of levulinic acid conversion and ethyl levulinate yield, respectively. Elsevier B.V. 2017 Article PeerReviewed Zainol, M. M. and Amin, N. A. S. and Asmadi, M. (2017) Effects of thermal treatment on carbon cryogel preparation for catalytic esterification of levulinic acid to ethyl levulinate. Fuel Processing Technology, 167 . pp. 431-441. ISSN 0378-3820 https://www.scopus.com/inward/record.uri?eid=2-s2.0-85026491068&doi=10.1016%2fj.fuproc.2017.07.028&partnerID=40&md5=7e2b3238cd357c334cc6e025b644ac51
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.
Amin, N. A. S.
Asmadi, M.
Effects of thermal treatment on carbon cryogel preparation for catalytic esterification of levulinic acid to ethyl levulinate
description Organic catalyst, especially derived from lignocellulosic biomass, is currently being developed for application in reaction engineering. Lignin, a major constituent in biomass, is highly potential as carbon- based -derived catalyst. Carbon cryogel was prepared from acidic lignin-furfural mixtures via sol-gel polycondensation. The effect of carbonization and calcination on carbon cryogel preparation has been investigated in this study. The carbon cryogels were characterized using surface area analyzer and NH3-TPD. Based on the carbonization and calcination studies, the total surface area and acidity of the selected carbonized cryogel were 214.2 m2/g and 11.3 mmol/g, respectively while calcined cryogel were 426.5 m2/g and 16.1 mmol/g, respectively. The selected carbon cryogels were further characterized using TGA, FTIR, XRD and FESEM-EDX. Overall, the characterization results revealed calcined cryogel has higher thermal stability and stronger acid sites. Subsequently, the performance of calcined carbon cryogel prevailed in catalytic esterification of levulinic acid to ethyl levulinate. The esterification reaction was further investigated at different catalyst loading (5 to 35 wt%), molar ratio of ethanol to levulinic acid (5 to 30), time (1 to 8 h) and temperature (78 to 170 °C). At the optimum conditions, calcined cryogel evinced 87.2% and 86.5 mol% of levulinic acid conversion and ethyl levulinate yield, respectively.
format Article
author Zainol, M. M.
Amin, N. A. S.
Asmadi, M.
author_facet Zainol, M. M.
Amin, N. A. S.
Asmadi, M.
author_sort Zainol, M. M.
title Effects of thermal treatment on carbon cryogel preparation for catalytic esterification of levulinic acid to ethyl levulinate
title_short Effects of thermal treatment on carbon cryogel preparation for catalytic esterification of levulinic acid to ethyl levulinate
title_full Effects of thermal treatment on carbon cryogel preparation for catalytic esterification of levulinic acid to ethyl levulinate
title_fullStr Effects of thermal treatment on carbon cryogel preparation for catalytic esterification of levulinic acid to ethyl levulinate
title_full_unstemmed Effects of thermal treatment on carbon cryogel preparation for catalytic esterification of levulinic acid to ethyl levulinate
title_sort effects of thermal treatment on carbon cryogel preparation for catalytic esterification of levulinic acid to ethyl levulinate
publisher Elsevier B.V.
publishDate 2017
url http://eprints.utm.my/id/eprint/76194/
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85026491068&doi=10.1016%2fj.fuproc.2017.07.028&partnerID=40&md5=7e2b3238cd357c334cc6e025b644ac51
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