LAPSE:2023.5801
Published Article

LAPSE:2023.5801
A Modification of Palm Waste Lignocellulosic Materials into Biographite Using Iron and Nickel Catalyst
February 23, 2023
Abstract
This paper presents an alternative way to maximize the utilization of palm waste by implementing a green approach to modify lignocellulosic materials into a highly crystalline biographite. A bio-graphite structure was successfully synthesized by converting lignocellulosic materials via a simple method using palm kernel shell (PKS) as a carbon precursor. This involved the direct impregnation of a catalyst into raw material followed by a thermal treatment. The structural transformation of the carbon was observed to be significantly altered by employing different types of catalysts and varying thermal treatment temperatures. Both XRD and Raman spectroscopy confirmed that the microstructural alteration occurred in the carbon structure of the sample prepared at 800 and 1000 °C using iron, nickel or the hybrid of iron-nickel catalysts. The XRD pattern revealed a high degree of graphitization for the sample prepared at 1000 °C, and it was evident that iron was the most active graphitization catalyst. The presence of an intensified peak was observed at 2θ = 26.5°, reflecting the formation of a highly ordered graphitic structure as a result of the interaction between the iron catalyst and the thermal treatment process at 1000 °C. The XRD observation was further supported by the Raman spectrum in which PKS-Fe1000 showed a lower defect structure associated with the presence of a significant amount of graphitic structure, as a low value of (Id/Ig) ratio was reported. An HRTEM image showed a well-defined lattice fringe seen on the structure for PKS-Fe1000; meanwhile, a disordered microstructure was observed for the control sample, indicating that successful structural modification was achieved with the aid of the catalyst. Further analysis from BET found that the PKS-Fe1000 developed a surface area of 202.932 m2/g with a pore volume of 0.208 cm3/g. An overall successful modification from palm waste into graphitic material was achieved. Thus, this study will help those involved in waste management to evaluate the possibility of a sustainable process for the generation of graphite material from palm waste. It can be concluded that palm waste is a potential source of production for graphite material through the adoption of the proposed waste management process.
This paper presents an alternative way to maximize the utilization of palm waste by implementing a green approach to modify lignocellulosic materials into a highly crystalline biographite. A bio-graphite structure was successfully synthesized by converting lignocellulosic materials via a simple method using palm kernel shell (PKS) as a carbon precursor. This involved the direct impregnation of a catalyst into raw material followed by a thermal treatment. The structural transformation of the carbon was observed to be significantly altered by employing different types of catalysts and varying thermal treatment temperatures. Both XRD and Raman spectroscopy confirmed that the microstructural alteration occurred in the carbon structure of the sample prepared at 800 and 1000 °C using iron, nickel or the hybrid of iron-nickel catalysts. The XRD pattern revealed a high degree of graphitization for the sample prepared at 1000 °C, and it was evident that iron was the most active graphitization catalyst. The presence of an intensified peak was observed at 2θ = 26.5°, reflecting the formation of a highly ordered graphitic structure as a result of the interaction between the iron catalyst and the thermal treatment process at 1000 °C. The XRD observation was further supported by the Raman spectrum in which PKS-Fe1000 showed a lower defect structure associated with the presence of a significant amount of graphitic structure, as a low value of (Id/Ig) ratio was reported. An HRTEM image showed a well-defined lattice fringe seen on the structure for PKS-Fe1000; meanwhile, a disordered microstructure was observed for the control sample, indicating that successful structural modification was achieved with the aid of the catalyst. Further analysis from BET found that the PKS-Fe1000 developed a surface area of 202.932 m2/g with a pore volume of 0.208 cm3/g. An overall successful modification from palm waste into graphitic material was achieved. Thus, this study will help those involved in waste management to evaluate the possibility of a sustainable process for the generation of graphite material from palm waste. It can be concluded that palm waste is a potential source of production for graphite material through the adoption of the proposed waste management process.
Record ID
Keywords
biomass waste, catalytic graphitization, graphite, palm kernel shell
Subject
Suggested Citation
Jabarullah NH, Kamal AS, Othman R. A Modification of Palm Waste Lignocellulosic Materials into Biographite Using Iron and Nickel Catalyst. (2023). LAPSE:2023.5801
Author Affiliations
Jabarullah NH: Malaysian Institute of Aviation Technology, Universiti Kuala Lumpur, Sepang 43900, Malaysia
Kamal AS: Chemical Engineering Section, Malaysian Institute of Chemical and Bioengineering, Universiti Kuala Lumpur, Melaka 78000, Malaysia
Othman R: Chemical Engineering Section, Malaysian Institute of Chemical and Bioengineering, Universiti Kuala Lumpur, Melaka 78000, Malaysia [ORCID]
Kamal AS: Chemical Engineering Section, Malaysian Institute of Chemical and Bioengineering, Universiti Kuala Lumpur, Melaka 78000, Malaysia
Othman R: Chemical Engineering Section, Malaysian Institute of Chemical and Bioengineering, Universiti Kuala Lumpur, Melaka 78000, Malaysia [ORCID]
Journal Name
Processes
Volume
9
Issue
6
First Page
1079
Year
2021
Publication Date
2021-06-21
ISSN
2227-9717
Version Comments
Original Submission
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PII: pr9061079, Publication Type: Journal Article
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LAPSE:2023.5801
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https://doi.org/10.3390/pr9061079
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Feb 23, 2023
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