Palm kernel shell-derived biochar and catalyst for biodiesel production; [Biochar dan Pemangkin berasaskan tempurung kelapa sawit untuk penghasilan biodiesel]

A promising catalyst based on a biomass pyrolysis by-product, biochar, has been developed to produce biodiesel. A carbon-based solid acid catalysts were prepared by sulfonating pyrolysis char with concentrated sulfuric acids. The catalysts were characterized using thermogravimetric analyses (TGA), s...

Full description

Bibliographic Details
Published in:Malaysian Journal of Analytical Sciences
Main Author: Nuradila D.; Ghani W.A.W.A.K.; Alias A.B.
Format: Article
Language:English
Published: Malaysian Society of Analytical Sciences 2017
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85014124843&doi=10.17576%2fmjas-2017-2101-23&partnerID=40&md5=7fc55521f6100f112ffbde656dfaa1de
id 2-s2.0-85014124843
spelling 2-s2.0-85014124843
Nuradila D.; Ghani W.A.W.A.K.; Alias A.B.
Palm kernel shell-derived biochar and catalyst for biodiesel production; [Biochar dan Pemangkin berasaskan tempurung kelapa sawit untuk penghasilan biodiesel]
2017
Malaysian Journal of Analytical Sciences
21
1
10.17576/mjas-2017-2101-23
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85014124843&doi=10.17576%2fmjas-2017-2101-23&partnerID=40&md5=7fc55521f6100f112ffbde656dfaa1de
A promising catalyst based on a biomass pyrolysis by-product, biochar, has been developed to produce biodiesel. A carbon-based solid acid catalysts were prepared by sulfonating pyrolysis char with concentrated sulfuric acids. The catalysts were characterized using thermogravimetric analyses (TGA), scanning electron microscope (SEM), Fourier transform infrared spectroscopy (FTIR) and surface area analyzer. Prepared catalysts were studied for their ability to catalyze transesterification of vegetable oils. The catalyst sulfonated with the concentrated sulfuric acid demonstrated considerable conversion in free fatty acid esterification. Further investigation of the catalyst was conducted to determine the effect of sulfonation time (1 and 3 hours) and surface area on the transesterification reactions. The surface area of the biochar was increased by chemical treatment using 10M potassium hydroxide through porosity development. Results showed the catalyst with the highest surface area and acid density to have the highest catalytic activity to produce biodiesel from canola oil in the presence of methanol as the reagent. The effects of alcohol to oil (A:O) molar ratio, reaction time and catalyst loading on the esterification reaction catalyzed by the sulfonated biochar were also investigated. Results revealed that more than 90% biodiesel yield was achieved at 15 wt% of catalyst amount, methanol to oil molar ratio was 9:1 and the agitation rate was 700 rpm. As a conclusion, the prepared biochar-based catalyst has a tremendous potential to be used in a process converting a high Free Fatty Acids (FFA) feedstock to biodiesel. © 2017, Malaysian Society of Analytical Sciences. All rights reserved.
Malaysian Society of Analytical Sciences
13942506
English
Article
All Open Access; Gold Open Access
author Nuradila D.; Ghani W.A.W.A.K.; Alias A.B.
spellingShingle Nuradila D.; Ghani W.A.W.A.K.; Alias A.B.
Palm kernel shell-derived biochar and catalyst for biodiesel production; [Biochar dan Pemangkin berasaskan tempurung kelapa sawit untuk penghasilan biodiesel]
author_facet Nuradila D.; Ghani W.A.W.A.K.; Alias A.B.
author_sort Nuradila D.; Ghani W.A.W.A.K.; Alias A.B.
title Palm kernel shell-derived biochar and catalyst for biodiesel production; [Biochar dan Pemangkin berasaskan tempurung kelapa sawit untuk penghasilan biodiesel]
title_short Palm kernel shell-derived biochar and catalyst for biodiesel production; [Biochar dan Pemangkin berasaskan tempurung kelapa sawit untuk penghasilan biodiesel]
title_full Palm kernel shell-derived biochar and catalyst for biodiesel production; [Biochar dan Pemangkin berasaskan tempurung kelapa sawit untuk penghasilan biodiesel]
title_fullStr Palm kernel shell-derived biochar and catalyst for biodiesel production; [Biochar dan Pemangkin berasaskan tempurung kelapa sawit untuk penghasilan biodiesel]
title_full_unstemmed Palm kernel shell-derived biochar and catalyst for biodiesel production; [Biochar dan Pemangkin berasaskan tempurung kelapa sawit untuk penghasilan biodiesel]
title_sort Palm kernel shell-derived biochar and catalyst for biodiesel production; [Biochar dan Pemangkin berasaskan tempurung kelapa sawit untuk penghasilan biodiesel]
publishDate 2017
container_title Malaysian Journal of Analytical Sciences
container_volume 21
container_issue 1
doi_str_mv 10.17576/mjas-2017-2101-23
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85014124843&doi=10.17576%2fmjas-2017-2101-23&partnerID=40&md5=7fc55521f6100f112ffbde656dfaa1de
description A promising catalyst based on a biomass pyrolysis by-product, biochar, has been developed to produce biodiesel. A carbon-based solid acid catalysts were prepared by sulfonating pyrolysis char with concentrated sulfuric acids. The catalysts were characterized using thermogravimetric analyses (TGA), scanning electron microscope (SEM), Fourier transform infrared spectroscopy (FTIR) and surface area analyzer. Prepared catalysts were studied for their ability to catalyze transesterification of vegetable oils. The catalyst sulfonated with the concentrated sulfuric acid demonstrated considerable conversion in free fatty acid esterification. Further investigation of the catalyst was conducted to determine the effect of sulfonation time (1 and 3 hours) and surface area on the transesterification reactions. The surface area of the biochar was increased by chemical treatment using 10M potassium hydroxide through porosity development. Results showed the catalyst with the highest surface area and acid density to have the highest catalytic activity to produce biodiesel from canola oil in the presence of methanol as the reagent. The effects of alcohol to oil (A:O) molar ratio, reaction time and catalyst loading on the esterification reaction catalyzed by the sulfonated biochar were also investigated. Results revealed that more than 90% biodiesel yield was achieved at 15 wt% of catalyst amount, methanol to oil molar ratio was 9:1 and the agitation rate was 700 rpm. As a conclusion, the prepared biochar-based catalyst has a tremendous potential to be used in a process converting a high Free Fatty Acids (FFA) feedstock to biodiesel. © 2017, Malaysian Society of Analytical Sciences. All rights reserved.
publisher Malaysian Society of Analytical Sciences
issn 13942506
language English
format Article
accesstype All Open Access; Gold Open Access
record_format scopus
collection Scopus
_version_ 1809677908484030464