High-performance of fluorine-doped tin oxide immobilized on polyurethane foam composite for crude glycerol to ethyl acetate photoconversion

Photocatalytic conversion of crude glycerol into high-value products offers economic and environmental benefits. However, impurities such as organic and inorganic salts, heavy metals, soap, and matter organic non-glycerol (MONG) can hinder direct conversion. This study investigates the transformatio...

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Published in:Journal of Medicinal and Pharmaceutical Chemistry Research
Main Author: Mastika S.S.; Hamzah N.; Nordin N.; Samad W.Z.
Format: Article
Language:English
Published: Sami Publishing Company 2024
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85183351871&doi=10.48309%2fjmpcr.2024.187638&partnerID=40&md5=8bb8c79bdaa6c06b40f01fcff6ce2403
id 2-s2.0-85183351871
spelling 2-s2.0-85183351871
Mastika S.S.; Hamzah N.; Nordin N.; Samad W.Z.
High-performance of fluorine-doped tin oxide immobilized on polyurethane foam composite for crude glycerol to ethyl acetate photoconversion
2024
Journal of Medicinal and Pharmaceutical Chemistry Research
6
5
10.48309/jmpcr.2024.187638
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85183351871&doi=10.48309%2fjmpcr.2024.187638&partnerID=40&md5=8bb8c79bdaa6c06b40f01fcff6ce2403
Photocatalytic conversion of crude glycerol into high-value products offers economic and environmental benefits. However, impurities such as organic and inorganic salts, heavy metals, soap, and matter organic non-glycerol (MONG) can hinder direct conversion. This study investigates the transformation of non-purified crude glycerol into value-added products such as ethyl acetate using a newly developed fluorine-doped tin oxide (FTO) photocatalyst immobilized on polyurethane foam (PU). FTO-PU was synthesized by a simple mixture method, and the FTO cluster was evenly distributed on the PU foam, obstructing intrinsic PU pores and leading to a smaller surface area for FTO-PU than FTO catalysts. Despite the smaller surface area, the FTO-PU catalyst demonstrated exceptional performance, achieving 94% conversion of crude glycerol with 86% selectivity to ethyl acetate, resulting in an 81% yield. The stability and reusability of the FTO-PU catalyst were confirmed over six cycles, demonstrating its potential for efficient crude glycerol conversion and laying the foundation for advanced materials in photocatalytic systems. Critical parameters, including light power, reaction time, crude glycerol concentration, and FTO loading within the PU structure, were optimized, with 2% FTO loading on PU, 70 W light intensity, 60 min reaction time, and 10 wt% crude glycerol concentration identified as optimal conditions. Importantly, this study aligns with Sustainable Development Goal 12, emphasizing sustainable consumption and production patterns. By addressing impurities in crude glycerol and converting it into high-value products, this research contributes to efficient resource management and supports the responsible disposal of waste, aligning with global efforts for a sustainable future. © 2024 by SPC (Sami Publishing Company).
Sami Publishing Company
29810221
English
Article

author Mastika S.S.; Hamzah N.; Nordin N.; Samad W.Z.
spellingShingle Mastika S.S.; Hamzah N.; Nordin N.; Samad W.Z.
High-performance of fluorine-doped tin oxide immobilized on polyurethane foam composite for crude glycerol to ethyl acetate photoconversion
author_facet Mastika S.S.; Hamzah N.; Nordin N.; Samad W.Z.
author_sort Mastika S.S.; Hamzah N.; Nordin N.; Samad W.Z.
title High-performance of fluorine-doped tin oxide immobilized on polyurethane foam composite for crude glycerol to ethyl acetate photoconversion
title_short High-performance of fluorine-doped tin oxide immobilized on polyurethane foam composite for crude glycerol to ethyl acetate photoconversion
title_full High-performance of fluorine-doped tin oxide immobilized on polyurethane foam composite for crude glycerol to ethyl acetate photoconversion
title_fullStr High-performance of fluorine-doped tin oxide immobilized on polyurethane foam composite for crude glycerol to ethyl acetate photoconversion
title_full_unstemmed High-performance of fluorine-doped tin oxide immobilized on polyurethane foam composite for crude glycerol to ethyl acetate photoconversion
title_sort High-performance of fluorine-doped tin oxide immobilized on polyurethane foam composite for crude glycerol to ethyl acetate photoconversion
publishDate 2024
container_title Journal of Medicinal and Pharmaceutical Chemistry Research
container_volume 6
container_issue 5
doi_str_mv 10.48309/jmpcr.2024.187638
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85183351871&doi=10.48309%2fjmpcr.2024.187638&partnerID=40&md5=8bb8c79bdaa6c06b40f01fcff6ce2403
description Photocatalytic conversion of crude glycerol into high-value products offers economic and environmental benefits. However, impurities such as organic and inorganic salts, heavy metals, soap, and matter organic non-glycerol (MONG) can hinder direct conversion. This study investigates the transformation of non-purified crude glycerol into value-added products such as ethyl acetate using a newly developed fluorine-doped tin oxide (FTO) photocatalyst immobilized on polyurethane foam (PU). FTO-PU was synthesized by a simple mixture method, and the FTO cluster was evenly distributed on the PU foam, obstructing intrinsic PU pores and leading to a smaller surface area for FTO-PU than FTO catalysts. Despite the smaller surface area, the FTO-PU catalyst demonstrated exceptional performance, achieving 94% conversion of crude glycerol with 86% selectivity to ethyl acetate, resulting in an 81% yield. The stability and reusability of the FTO-PU catalyst were confirmed over six cycles, demonstrating its potential for efficient crude glycerol conversion and laying the foundation for advanced materials in photocatalytic systems. Critical parameters, including light power, reaction time, crude glycerol concentration, and FTO loading within the PU structure, were optimized, with 2% FTO loading on PU, 70 W light intensity, 60 min reaction time, and 10 wt% crude glycerol concentration identified as optimal conditions. Importantly, this study aligns with Sustainable Development Goal 12, emphasizing sustainable consumption and production patterns. By addressing impurities in crude glycerol and converting it into high-value products, this research contributes to efficient resource management and supports the responsible disposal of waste, aligning with global efforts for a sustainable future. © 2024 by SPC (Sami Publishing Company).
publisher Sami Publishing Company
issn 29810221
language English
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