Glucose-derived bio-fuel additive via ethanolysis catalyzed by zinc modified sulfonated carbon

The transformation of biomass derivative components such as glucose to levulinate esters via direct conversion in alcohol with acid catalyst has attracted great attention. In this study, the sulfonate urea-furfural carbon cryogel doped with zinc (UFCS-Zn) has been applied as an acid catalyst for the...

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Main Authors: Mohammad Zainol, Muzakkir, Mohd. Asmadi, Mohd. Asmadi, Saidina Amin, Nor Aishah, Roslan, Mohamad Nor Fitri
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Published: Elsevier Ltd 2022
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Online Access:http://eprints.utm.my/id/eprint/101129/
http://dx.doi.org/10.1016/j.matpr.2021.08.065
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spelling my.utm.1011292023-06-01T08:34:29Z http://eprints.utm.my/id/eprint/101129/ Glucose-derived bio-fuel additive via ethanolysis catalyzed by zinc modified sulfonated carbon Mohammad Zainol, Muzakkir Mohd. Asmadi, Mohd. Asmadi Saidina Amin, Nor Aishah Roslan, Mohamad Nor Fitri Q Science (General) TP Chemical technology The transformation of biomass derivative components such as glucose to levulinate esters via direct conversion in alcohol with acid catalyst has attracted great attention. In this study, the sulfonate urea-furfural carbon cryogel doped with zinc (UFCS-Zn) has been applied as an acid catalyst for the glucose ethanolysis reaction. Initially, the carbon cryogel was prepared via a mixing process of urea and furfural in an acidic medium followed by freeze-drying and calcination steps. Then, the urea-furfural carbon cryogel (UFC) was sulfonated before modification with zinc via impregnation of zinc (II) nitrate to provide the Bronsted and Lewis acid catalyst which is required for reaction conversion. The effects of reaction parameters on the ethanolysis of glucose have been conducted to determine the selected condition in obtaining high ethyl levulinate yield. The parameters studied include the glucose feed (0.2 to 0.5 g), catalyst loading (0.15 to 1.2 g), and reaction temperature (140 to 190 °C). The catalyst was characterized using TGA-DTG, FTIR, and SEM-EDX techniques to study the surface chemistry and thermal stability. The glucose ethanolysis reaction with UFCS-Zn catalyst has provided maximum ethyl levulinate yield of 27.4 mol% at selected condition of 180 °C, 6 h, 0.8 g (1:2) of catalyst and 0.4 g of glucose. Based on characterization of UFCS-Zn, the presence of sulfonate group and Zn element on the catalyst through the sulfonation and impregnation steps have been verified. This result has been confirmed through the detection of SO3H functional group and Zn-O bonding from the FTIR, and elements of S, O, and Zn from the EDX. High thermal stability of the UFCS-Zn (via TGA-DTG curves) allows the catalyst to assist the reaction at setting temperature without degradation in mass during the reaction. The UFCS-Zn catalyst has drafted its potential as catalyst for further conversion of biomass components. Elsevier Ltd 2022 Article PeerReviewed Mohammad Zainol, Muzakkir and Mohd. Asmadi, Mohd. Asmadi and Saidina Amin, Nor Aishah and Roslan, Mohamad Nor Fitri (2022) Glucose-derived bio-fuel additive via ethanolysis catalyzed by zinc modified sulfonated carbon. Materials Today: Proceedings, 57 (3). pp. 1008-1013. ISSN 2214-7853 http://dx.doi.org/10.1016/j.matpr.2021.08.065 DOI:10.1016/j.matpr.2021.08.065
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 Q Science (General)
TP Chemical technology
spellingShingle Q Science (General)
TP Chemical technology
Mohammad Zainol, Muzakkir
Mohd. Asmadi, Mohd. Asmadi
Saidina Amin, Nor Aishah
Roslan, Mohamad Nor Fitri
Glucose-derived bio-fuel additive via ethanolysis catalyzed by zinc modified sulfonated carbon
description The transformation of biomass derivative components such as glucose to levulinate esters via direct conversion in alcohol with acid catalyst has attracted great attention. In this study, the sulfonate urea-furfural carbon cryogel doped with zinc (UFCS-Zn) has been applied as an acid catalyst for the glucose ethanolysis reaction. Initially, the carbon cryogel was prepared via a mixing process of urea and furfural in an acidic medium followed by freeze-drying and calcination steps. Then, the urea-furfural carbon cryogel (UFC) was sulfonated before modification with zinc via impregnation of zinc (II) nitrate to provide the Bronsted and Lewis acid catalyst which is required for reaction conversion. The effects of reaction parameters on the ethanolysis of glucose have been conducted to determine the selected condition in obtaining high ethyl levulinate yield. The parameters studied include the glucose feed (0.2 to 0.5 g), catalyst loading (0.15 to 1.2 g), and reaction temperature (140 to 190 °C). The catalyst was characterized using TGA-DTG, FTIR, and SEM-EDX techniques to study the surface chemistry and thermal stability. The glucose ethanolysis reaction with UFCS-Zn catalyst has provided maximum ethyl levulinate yield of 27.4 mol% at selected condition of 180 °C, 6 h, 0.8 g (1:2) of catalyst and 0.4 g of glucose. Based on characterization of UFCS-Zn, the presence of sulfonate group and Zn element on the catalyst through the sulfonation and impregnation steps have been verified. This result has been confirmed through the detection of SO3H functional group and Zn-O bonding from the FTIR, and elements of S, O, and Zn from the EDX. High thermal stability of the UFCS-Zn (via TGA-DTG curves) allows the catalyst to assist the reaction at setting temperature without degradation in mass during the reaction. The UFCS-Zn catalyst has drafted its potential as catalyst for further conversion of biomass components.
format Article
author Mohammad Zainol, Muzakkir
Mohd. Asmadi, Mohd. Asmadi
Saidina Amin, Nor Aishah
Roslan, Mohamad Nor Fitri
author_facet Mohammad Zainol, Muzakkir
Mohd. Asmadi, Mohd. Asmadi
Saidina Amin, Nor Aishah
Roslan, Mohamad Nor Fitri
author_sort Mohammad Zainol, Muzakkir
title Glucose-derived bio-fuel additive via ethanolysis catalyzed by zinc modified sulfonated carbon
title_short Glucose-derived bio-fuel additive via ethanolysis catalyzed by zinc modified sulfonated carbon
title_full Glucose-derived bio-fuel additive via ethanolysis catalyzed by zinc modified sulfonated carbon
title_fullStr Glucose-derived bio-fuel additive via ethanolysis catalyzed by zinc modified sulfonated carbon
title_full_unstemmed Glucose-derived bio-fuel additive via ethanolysis catalyzed by zinc modified sulfonated carbon
title_sort glucose-derived bio-fuel additive via ethanolysis catalyzed by zinc modified sulfonated carbon
publisher Elsevier Ltd
publishDate 2022
url http://eprints.utm.my/id/eprint/101129/
http://dx.doi.org/10.1016/j.matpr.2021.08.065
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score 13.18916