» Articles » PMID: 33011540

Magnetic Biochar Derived from Waste Palm Kernel Shell for Biodiesel Production Via Sulfonation

Overview
Journal Waste Manag
Date 2020 Oct 4
PMID 33011540
Citations 6
Authors
Affiliations
Soon will be listed here.
Abstract

Due to its environment-friendly and replenishable characteristics, biodiesel has the potential to substitute fossil fuels as an alternative source of energy. Although biodiesel has many benefits to offer, manufacturing biodiesel on an industrial scale is uneconomical as a high cost of feedstock is required. A novel sulfonated and magnetic catalyst synthesised from a palm kernel shell (PMB-SOH) was first introduced in this study for methyl ester or biodiesel production to reduce capital costs. The wasted palm kernel shell (PKS) biochar impregnated with ferrite FeO was synthesised with concentrated sulphuric acid through the sulfonation process. The SEM, EDX, FTIR, VSM and TGA characterization of the catalysts were presented. Then, the optimisation of biodiesel synthesis was catalysed by PMB-SOH via the Response Surface Methodology (RSM). It was found that the maximum biodiesel yield of 90.2% was achieved under these optimum operating conditions: 65 °C, 102 min, methanol to oil ratio of 13:1 and the catalyst loading of 3.66 wt%. Overall, PMB-SOH demonstrated acceptable catalysing capability on its first cycle, which subsequently showed a reduction of the reusability performance after 4 cycles. An important practical implication is that PMB-SOH can be established as a promising heterogeneous catalyst by incorporating an iron layer which can substantially improve the catalyst separation performance in biodiesel production.

Citing Articles

Iron-Modified Acid Carbons for the Conversion of Fructose to 5-Hydroxymethylfurfural under Microwave Heating.

Machado L, Andrade L, Mandelli D, Carvalho W ACS Omega. 2024; 9(45):45328-45341.

PMID: 39554426 PMC: 11561637. DOI: 10.1021/acsomega.4c07030.


Advances in biomass derived low-cost carbon catalyst for biodiesel production: preparation methods, reaction conditions, and mechanisms.

Yadav G, Yadav N, Ahmaruzzaman M RSC Adv. 2023; 13(33):23197-23210.

PMID: 37545599 PMC: 10398831. DOI: 10.1039/d3ra03561a.


Review of Advances in the Utilization of Biochar-Derived Catalysts for Biodiesel Production.

Zhao C, Xu Q, Gu Y, Nie X, Shan R ACS Omega. 2023; 8(9):8190-8200.

PMID: 36910936 PMC: 9996642. DOI: 10.1021/acsomega.2c07909.


KNO-Loaded Coffee Husk Ash as a Heterogeneous Alkali Catalyst for Waste Frying Oil Valorization into Biodiesel.

Bekele D, Shibeshi N, Reshad A ACS Omega. 2022; 7(49):45129-45143.

PMID: 36530280 PMC: 9753496. DOI: 10.1021/acsomega.2c05572.


A Highly Effective Biomass-Derived Solid Acid Catalyst for Biodiesel Synthesis Through Esterification.

Zhang S, Pan H, Huang J, Li Y, Zhang H Front Chem. 2022; 10:882235.

PMID: 35372280 PMC: 8965869. DOI: 10.3389/fchem.2022.882235.