A magnetically separable acid-functionalized nanocatalyst for biodiesel production

A robust, magnetically recoverable Fe3O4@SiO2-SO3H core@shell nanoparticulate acid catalyst was successfully synthesized by a stepwise co-precipitation, coating, and functionalization. It was utilized as a heterogeneous catalyst for the transesterification and esterification of triglycerides and fre...

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Main Authors: Changmai, Bishwajit, Wheatley, Andrew E.H., Rano, Ruma, Halder, Gopinath, Selvaraj, Manickam, Rashid, Umer, Rokhum, Samuel Lalthazuala
Format: Article
Published: Elsevier 2021
Online Access:http://psasir.upm.edu.my/id/eprint/95772/
https://www.sciencedirect.com/science/article/pii/S0016236121014575?via%3Dihub
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Institution: Universiti Putra Malaysia
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spelling my.upm.eprints.957722023-04-04T07:08:35Z http://psasir.upm.edu.my/id/eprint/95772/ A magnetically separable acid-functionalized nanocatalyst for biodiesel production Changmai, Bishwajit Wheatley, Andrew E.H. Rano, Ruma Halder, Gopinath Selvaraj, Manickam Rashid, Umer Rokhum, Samuel Lalthazuala A robust, magnetically recoverable Fe3O4@SiO2-SO3H core@shell nanoparticulate acid catalyst was successfully synthesized by a stepwise co-precipitation, coating, and functionalization. It was utilized as a heterogeneous catalyst for the transesterification and esterification of triglycerides and free fatty acids in Jatropha curcas oil (JCO) to a fatty acid methyl ester (FAME) mixture. This product conformed to ASTM standards for biodiesel. The as-prepared catalyst had a magnetic saturation of 30.94 emu g−1, surface area of 32.88 m2g−1, acidity of 0.76 mmol g−1, and pore diameter of 3.48 nm. The catalyst showed 98 ± 1% conversion using the optimized reaction conditions of methanol:oil molar ratio of 9:1, 8 wt% catalyst loading, 80 °C, and 3.5 h. The transesterification of JCO to FAME using the present catalyst benefitted from a very low activation energy of 37.0 kJ mol−1. The solid acid catalyst exhibited excellent chemical and thermal stability, and also reusability based on easy separation from the reaction mixture due to its inherently magnetic nature. Modest deterioration in oil conversion after multiple uses was offset by one-pot, quantitative regeneration of catalyst active sites. This enabled identical performance in JCO methyl transesterification and esterification in the 1st and 10th catalytic cycles. Elsevier 2021 Article PeerReviewed Changmai, Bishwajit and Wheatley, Andrew E.H. and Rano, Ruma and Halder, Gopinath and Selvaraj, Manickam and Rashid, Umer and Rokhum, Samuel Lalthazuala (2021) A magnetically separable acid-functionalized nanocatalyst for biodiesel production. Fuel, 305. art. no. 121576. pp. 1-10. ISSN 0016-2361 https://www.sciencedirect.com/science/article/pii/S0016236121014575?via%3Dihub 10.1016/j.fuel.2021.121576
institution Universiti Putra Malaysia
building UPM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Putra Malaysia
content_source UPM Institutional Repository
url_provider http://psasir.upm.edu.my/
description A robust, magnetically recoverable Fe3O4@SiO2-SO3H core@shell nanoparticulate acid catalyst was successfully synthesized by a stepwise co-precipitation, coating, and functionalization. It was utilized as a heterogeneous catalyst for the transesterification and esterification of triglycerides and free fatty acids in Jatropha curcas oil (JCO) to a fatty acid methyl ester (FAME) mixture. This product conformed to ASTM standards for biodiesel. The as-prepared catalyst had a magnetic saturation of 30.94 emu g−1, surface area of 32.88 m2g−1, acidity of 0.76 mmol g−1, and pore diameter of 3.48 nm. The catalyst showed 98 ± 1% conversion using the optimized reaction conditions of methanol:oil molar ratio of 9:1, 8 wt% catalyst loading, 80 °C, and 3.5 h. The transesterification of JCO to FAME using the present catalyst benefitted from a very low activation energy of 37.0 kJ mol−1. The solid acid catalyst exhibited excellent chemical and thermal stability, and also reusability based on easy separation from the reaction mixture due to its inherently magnetic nature. Modest deterioration in oil conversion after multiple uses was offset by one-pot, quantitative regeneration of catalyst active sites. This enabled identical performance in JCO methyl transesterification and esterification in the 1st and 10th catalytic cycles.
format Article
author Changmai, Bishwajit
Wheatley, Andrew E.H.
Rano, Ruma
Halder, Gopinath
Selvaraj, Manickam
Rashid, Umer
Rokhum, Samuel Lalthazuala
spellingShingle Changmai, Bishwajit
Wheatley, Andrew E.H.
Rano, Ruma
Halder, Gopinath
Selvaraj, Manickam
Rashid, Umer
Rokhum, Samuel Lalthazuala
A magnetically separable acid-functionalized nanocatalyst for biodiesel production
author_facet Changmai, Bishwajit
Wheatley, Andrew E.H.
Rano, Ruma
Halder, Gopinath
Selvaraj, Manickam
Rashid, Umer
Rokhum, Samuel Lalthazuala
author_sort Changmai, Bishwajit
title A magnetically separable acid-functionalized nanocatalyst for biodiesel production
title_short A magnetically separable acid-functionalized nanocatalyst for biodiesel production
title_full A magnetically separable acid-functionalized nanocatalyst for biodiesel production
title_fullStr A magnetically separable acid-functionalized nanocatalyst for biodiesel production
title_full_unstemmed A magnetically separable acid-functionalized nanocatalyst for biodiesel production
title_sort magnetically separable acid-functionalized nanocatalyst for biodiesel production
publisher Elsevier
publishDate 2021
url http://psasir.upm.edu.my/id/eprint/95772/
https://www.sciencedirect.com/science/article/pii/S0016236121014575?via%3Dihub
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