Revolutionizing biodiesel production: A breakthrough synthesis and characterization of bismuth ferrite nanocatalysts for transesterification of palm and waste cooking oil

The present work deals with the successful synthesis of heterogeneous bismuth ferrite nanocatalysts (BiFeO3) using kappa-carrageenan polysaccharides to study the efficient transesterification of palm cooking oil for biodiesel production. The optimized size of pristine BiFeO3 obtained was 95.8 nm, at...

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Published in:Fuel
Main Author: Razuki A.; Haida Mohd Kaus N.; Sagadevann S.; Salaeh S.; Lokman Ibrahim M.; Mustaffa Al Bakri Abdullah M.
Format: Article
Language:English
Published: Elsevier Ltd 2023
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85153052674&doi=10.1016%2fj.fuel.2023.128413&partnerID=40&md5=3fa67305768d14884593b9acf8d16d80
id 2-s2.0-85153052674
spelling 2-s2.0-85153052674
Razuki A.; Haida Mohd Kaus N.; Sagadevann S.; Salaeh S.; Lokman Ibrahim M.; Mustaffa Al Bakri Abdullah M.
Revolutionizing biodiesel production: A breakthrough synthesis and characterization of bismuth ferrite nanocatalysts for transesterification of palm and waste cooking oil
2023
Fuel
346

10.1016/j.fuel.2023.128413
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85153052674&doi=10.1016%2fj.fuel.2023.128413&partnerID=40&md5=3fa67305768d14884593b9acf8d16d80
The present work deals with the successful synthesis of heterogeneous bismuth ferrite nanocatalysts (BiFeO3) using kappa-carrageenan polysaccharides to study the efficient transesterification of palm cooking oil for biodiesel production. The optimized size of pristine BiFeO3 obtained was 95.8 nm, at a molar ratio of (Bi: Fe; 1:2) with a 1 % carrageenan biotemplate and calcined at 823 K for 2 h. The nanocatalysts have been producing high thermal stability, and X-ray diffraction (XRD) analysis showed the rhombohedral crystalline phases. The BiFeO3 nanocatalysts demonstrated outstanding catalytic performance during the transesterification of palm and waste cooking oils. The abovementioned processes with different reaction parameters for the production of fatty acid methyl ester (FAME) were investigated in batches. The effects of the catalyst dosage, temperature, time, and molar ratio (oil/methanol) have been conducted. A maximum FAME yield of 98% was achieved using optimized conditions: oil and methanol at a molar ratio of 1:15, and BiFeO3 with a 7 wt% catalyst dosage in 2 h at 353 K. The results indicated high chemical stability of the catalyst after five consecutive cycles with the same catalytic performance and proved to be a suitable catalyst for the production of biodiesel with high reaction rates and low catalyst usage. © 2023 Elsevier Ltd
Elsevier Ltd
162361
English
Article

author Razuki A.; Haida Mohd Kaus N.; Sagadevann S.; Salaeh S.; Lokman Ibrahim M.; Mustaffa Al Bakri Abdullah M.
spellingShingle Razuki A.; Haida Mohd Kaus N.; Sagadevann S.; Salaeh S.; Lokman Ibrahim M.; Mustaffa Al Bakri Abdullah M.
Revolutionizing biodiesel production: A breakthrough synthesis and characterization of bismuth ferrite nanocatalysts for transesterification of palm and waste cooking oil
author_facet Razuki A.; Haida Mohd Kaus N.; Sagadevann S.; Salaeh S.; Lokman Ibrahim M.; Mustaffa Al Bakri Abdullah M.
author_sort Razuki A.; Haida Mohd Kaus N.; Sagadevann S.; Salaeh S.; Lokman Ibrahim M.; Mustaffa Al Bakri Abdullah M.
title Revolutionizing biodiesel production: A breakthrough synthesis and characterization of bismuth ferrite nanocatalysts for transesterification of palm and waste cooking oil
title_short Revolutionizing biodiesel production: A breakthrough synthesis and characterization of bismuth ferrite nanocatalysts for transesterification of palm and waste cooking oil
title_full Revolutionizing biodiesel production: A breakthrough synthesis and characterization of bismuth ferrite nanocatalysts for transesterification of palm and waste cooking oil
title_fullStr Revolutionizing biodiesel production: A breakthrough synthesis and characterization of bismuth ferrite nanocatalysts for transesterification of palm and waste cooking oil
title_full_unstemmed Revolutionizing biodiesel production: A breakthrough synthesis and characterization of bismuth ferrite nanocatalysts for transesterification of palm and waste cooking oil
title_sort Revolutionizing biodiesel production: A breakthrough synthesis and characterization of bismuth ferrite nanocatalysts for transesterification of palm and waste cooking oil
publishDate 2023
container_title Fuel
container_volume 346
container_issue
doi_str_mv 10.1016/j.fuel.2023.128413
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85153052674&doi=10.1016%2fj.fuel.2023.128413&partnerID=40&md5=3fa67305768d14884593b9acf8d16d80
description The present work deals with the successful synthesis of heterogeneous bismuth ferrite nanocatalysts (BiFeO3) using kappa-carrageenan polysaccharides to study the efficient transesterification of palm cooking oil for biodiesel production. The optimized size of pristine BiFeO3 obtained was 95.8 nm, at a molar ratio of (Bi: Fe; 1:2) with a 1 % carrageenan biotemplate and calcined at 823 K for 2 h. The nanocatalysts have been producing high thermal stability, and X-ray diffraction (XRD) analysis showed the rhombohedral crystalline phases. The BiFeO3 nanocatalysts demonstrated outstanding catalytic performance during the transesterification of palm and waste cooking oils. The abovementioned processes with different reaction parameters for the production of fatty acid methyl ester (FAME) were investigated in batches. The effects of the catalyst dosage, temperature, time, and molar ratio (oil/methanol) have been conducted. A maximum FAME yield of 98% was achieved using optimized conditions: oil and methanol at a molar ratio of 1:15, and BiFeO3 with a 7 wt% catalyst dosage in 2 h at 353 K. The results indicated high chemical stability of the catalyst after five consecutive cycles with the same catalytic performance and proved to be a suitable catalyst for the production of biodiesel with high reaction rates and low catalyst usage. © 2023 Elsevier Ltd
publisher Elsevier Ltd
issn 162361
language English
format Article
accesstype
record_format scopus
collection Scopus
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