Javascript must be enabled to continue!
Graft Copolymerization of Methlymethacrylate on Lignin Produced from Agricultural Wastes
View through CrossRef
<p>Lignin was isolated from banana pseudo stem, palm frond and coconut husk. The moisture content of the banana pseudo stem and palm frond was determined gravimetrically. The lignin was isolated by alkaline hydrolysis with NaOH followed by precipitation with 72% H<sub>2</sub>SO<sub>4</sub>. The isolated lignin was then copolymerized with methyl methacrylate via free radical mechanism. The lignin and the corresponding copolymers were characterised by FTIR analysis.</p><p>The lignin content in banana pseudo stem, palm frond and coconut husk were respectively 16%, 14% and 13% while the grafting percentage of the corresponding lignin with methlymethacrylate (MMA) are 24%, 21% and 19%. These implied that production of lignin from agricultural wastes could reduce the latter solid wastes.</p><p>The FTIR analysis of the different lignin showed important peaks such as O-H band between 3433 cm<sup>-1 </sup>and 3450 cm<sup>-1</sup>; C=C band around 1515 cm<sup>-1 </sup>was absent in palm frond lignin; and C=O band was only observed in coconut husk lignin at 1696 cm<sup>-1</sup>. There was a significant difference in the absorption band of the C-O (ether) of the lignin between 1107 cm<sup>-1</sup>and 1198 cm<sup>-1</sup>. The shift in the absorption peaks in the spectra of the isolated lignin for the different sources of the lignin and the grafting percentage corroborate the fact that the properties and composition of lignin depend on the source of the lignin. The FTIR analysis of the copolymers also showed two prominent peaks for C=O band between 1680 cm<sup>-1 </sup>and 1708 cm<sup>-1</sup>; and C-O (ester) between 1220 cm<sup>-1 </sup>and 1320 cm<sup>-1 </sup>that were absent in the lignin. <sup> </sup>These confirm the presence of the acrylate functional groups.</p>
Canadian Center of Science and Education
Title: Graft Copolymerization of Methlymethacrylate on Lignin Produced from Agricultural Wastes
Description:
<p>Lignin was isolated from banana pseudo stem, palm frond and coconut husk.
The moisture content of the banana pseudo stem and palm frond was determined gravimetrically.
The lignin was isolated by alkaline hydrolysis with NaOH followed by precipitation with 72% H<sub>2</sub>SO<sub>4</sub>.
The isolated lignin was then copolymerized with methyl methacrylate via free radical mechanism.
The lignin and the corresponding copolymers were characterised by FTIR analysis.
</p><p>The lignin content in banana pseudo stem, palm frond and coconut husk were respectively 16%, 14% and 13% while the grafting percentage of the corresponding lignin with methlymethacrylate (MMA) are 24%, 21% and 19%.
These implied that production of lignin from agricultural wastes could reduce the latter solid wastes.
</p><p>The FTIR analysis of the different lignin showed important peaks such as O-H band between 3433 cm<sup>-1 </sup>and 3450 cm<sup>-1</sup>; C=C band around 1515 cm<sup>-1 </sup>was absent in palm frond lignin; and C=O band was only observed in coconut husk lignin at 1696 cm<sup>-1</sup>.
There was a significant difference in the absorption band of the C-O (ether) of the lignin between 1107 cm<sup>-1</sup>and 1198 cm<sup>-1</sup>.
The shift in the absorption peaks in the spectra of the isolated lignin for the different sources of the lignin and the grafting percentage corroborate the fact that the properties and composition of lignin depend on the source of the lignin.
The FTIR analysis of the copolymers also showed two prominent peaks for C=O band between 1680 cm<sup>-1 </sup>and 1708 cm<sup>-1</sup>; and C-O (ester) between 1220 cm<sup>-1 </sup>and 1320 cm<sup>-1 </sup>that were absent in the lignin.
<sup> </sup>These confirm the presence of the acrylate functional groups.
</p>.
Related Results
Cationic Lignin Polymers as Flocculant for Municipal Wastewater
Cationic Lignin Polymers as Flocculant for Municipal Wastewater
The radical polymerization of acid-washed and unwashed softwood kraft lignin with [2-(methacryloyloxy) ethyl] trimethylammonium chloride (METAC) was attempted to investigate the pr...
Fractionation and characterization of lignin from sugarcane bagasse using a sulfuric acid catalyzed solvothermal process
Fractionation and characterization of lignin from sugarcane bagasse using a sulfuric acid catalyzed solvothermal process
Abstract
Background: Conversion of lignocellulosic residue to bioenergy and biofuel is a promising platform for global sustainability. Fractionation is an initial step for ...
Effect of Graft Shift Direction on Graft Detachment and Endothelial Cell Survival After Descemet Membrane Endothelial Keratoplasty
Effect of Graft Shift Direction on Graft Detachment and Endothelial Cell Survival After Descemet Membrane Endothelial Keratoplasty
Purpose:
To investigate the effects of graft shift orientation on clinical outcomes after Descemet membrane endothelial keratoplasty (DMEK).
...
Effect of ozone treatment on softwood soda lignin-based water reducer performance for concrete
Effect of ozone treatment on softwood soda lignin-based water reducer performance for concrete
A lignin-based water reducer for concrete was prepared from softwood soda lignin. The soda lignin and the lignin-polyethylene glycol (PEG) derivative were modified with ozone to im...
Lignin as Feedstock for Nanoparticles Production
Lignin as Feedstock for Nanoparticles Production
Lignin is an interesting natural polymer with characteristics that contribute for the development and growth of plants. Lignin presents high variability associated with the diversi...
Technical Lignin Fractionation: A Powerful Tool for Lignin Structure Homogenization and Its Application
Technical Lignin Fractionation: A Powerful Tool for Lignin Structure Homogenization and Its Application
Extracted lignin as a by-product of pulping and bio-refining processes is the main available bio-phenolic polymer. The structural complexity, polydispersity, and black color of lig...
The Bacterial Degradation of Lignin—A Review
The Bacterial Degradation of Lignin—A Review
Microbial degradation of lignin, a natural complex biopolymer, a renewable raw material with a wide range of applications, has been mainly directed at fungal systems, nevertheless,...
Lignin Particle Production by Spray Dryer with Self-Assembly Technique
Lignin Particle Production by Spray Dryer with Self-Assembly Technique
Spry dry and self-assembly techniques was applied to obtain a spherical lignin particle with low particles size distribution. Phase behavior of lignin, ethanol and water ternary sy...

