Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Powdered and beaded sawdust materials modified iron (III) oxide-hydroxide for adsorption of lead (II) ion and reactive blue 4 dye

View through CrossRef
AbstractThe problems of lead and reactive blue 4 (RB4) dye contamination in wastewater are concerns because of their toxicities to aquatic life and water quality, so lead and RB4 dye removals are recommended to remove from wastewater before discharging. Sawdust powder (SP), sawdust powder doped iron (III) oxide-hydroxide (SPF), sawdust beads (SPB), and sawdust powder doped iron (III) oxide-hydroxide beads (SPFB) were synthesized and characterized with various techniques, and their lead or RB4 dye removal efficiencies were investigated by batch experiments, adsorption isotherms, kinetics, and desorption experiments. SPFB demonstrated higher specific surface area (11.020 m2 g−1) and smaller pore size (3.937 nm) than other materials. SP and SPF were irregular shapes with heterogeneous structures whereas SPB and SPFB had spherical shapes with coarse surfaces. Calcium (Ca) and oxygen (O) were found in all materials whereas iron (Fe) was only found in SPF and SPFB. O–H, C–H, C=C, and C–O were detected in all materials. Their lead removal efficiencies of all materials were higher than 82%, and RB4 dye removal efficiencies of SPB and SPFB were higher than 87%. Therefore, adding iron (III) oxide-hydroxide and changing material form helped to improve material efficiencies for lead or RB4 dye adsorption. SP and SPB corresponded to Langmuir model related to a physical adsorption process whereas SPF and SPFB corresponded to the Freundlich model correlated to a chemisorption process. All materials corresponded to a pseudo-second-order kinetic model relating to the chemical adsorption process. All materials could be reused more than 5 cycles with high lead removal of 63%, and SPB and SPFB also could be reused more than 5 cycles for high RB4 dye removal of 72%. Therefore, SPFB was a potential material to apply for lead or RB4 dye removal in industrial applications.
Title: Powdered and beaded sawdust materials modified iron (III) oxide-hydroxide for adsorption of lead (II) ion and reactive blue 4 dye
Description:
AbstractThe problems of lead and reactive blue 4 (RB4) dye contamination in wastewater are concerns because of their toxicities to aquatic life and water quality, so lead and RB4 dye removals are recommended to remove from wastewater before discharging.
Sawdust powder (SP), sawdust powder doped iron (III) oxide-hydroxide (SPF), sawdust beads (SPB), and sawdust powder doped iron (III) oxide-hydroxide beads (SPFB) were synthesized and characterized with various techniques, and their lead or RB4 dye removal efficiencies were investigated by batch experiments, adsorption isotherms, kinetics, and desorption experiments.
SPFB demonstrated higher specific surface area (11.
020 m2 g−1) and smaller pore size (3.
937 nm) than other materials.
SP and SPF were irregular shapes with heterogeneous structures whereas SPB and SPFB had spherical shapes with coarse surfaces.
Calcium (Ca) and oxygen (O) were found in all materials whereas iron (Fe) was only found in SPF and SPFB.
O–H, C–H, C=C, and C–O were detected in all materials.
Their lead removal efficiencies of all materials were higher than 82%, and RB4 dye removal efficiencies of SPB and SPFB were higher than 87%.
Therefore, adding iron (III) oxide-hydroxide and changing material form helped to improve material efficiencies for lead or RB4 dye adsorption.
SP and SPB corresponded to Langmuir model related to a physical adsorption process whereas SPF and SPFB corresponded to the Freundlich model correlated to a chemisorption process.
All materials corresponded to a pseudo-second-order kinetic model relating to the chemical adsorption process.
All materials could be reused more than 5 cycles with high lead removal of 63%, and SPB and SPFB also could be reused more than 5 cycles for high RB4 dye removal of 72%.
Therefore, SPFB was a potential material to apply for lead or RB4 dye removal in industrial applications.

Related Results

The Fabrication of Tiles from Sawdust to Achieve Environmental Sustainability
The Fabrication of Tiles from Sawdust to Achieve Environmental Sustainability
Abstract Currently, tiles are manufactured pieces of hardwearing materials such as ceramic, stone, metal, baked clay, or even glass, and tiles are generally used for coveri...
Studies of Dye-Titania Interactions in Dye-sensitised Solar Cells
Studies of Dye-Titania Interactions in Dye-sensitised Solar Cells
This work details the synthesis of several bespoke materials to derivatise the surface of titania (TiO2) in order to obtain greater understanding of the sensitisation process in dy...
The Blue Beret
The Blue Beret
When we think of United Nations (UN) peacekeepers, the first image that is conjured in our mind is of an individual sporting a blue helmet or a blue beret (fig. 1). While simple an...
Modification of sugarcane bagasse with iron(III) oxide-hydroxide to improve its adsorption property for removing lead(II) ions
Modification of sugarcane bagasse with iron(III) oxide-hydroxide to improve its adsorption property for removing lead(II) ions
AbstractLead contamination in wastewater results in toxicity of aquatic life and water quality, it is recommended to remove lead before discharging. Four sugarcane bagasse adsorben...
Enhanced Biogas Production Using High-Density Polyethene Digester Insulated with Saw Dust
Enhanced Biogas Production Using High-Density Polyethene Digester Insulated with Saw Dust
Abstract This study was carried out to investigate the production of biogas by the anaerobic digestion of cow dung using doubled high-density polyethene digester ...
DNA Cleavage and Trypanosomes Death by a Combination of Alamar Blue and Au(III)
DNA Cleavage and Trypanosomes Death by a Combination of Alamar Blue and Au(III)
Alamar Blue test indicates toxicity of Au(III), but Au(III) ion itself is not toxic in vitro and does not cleave DNA. However, combination of Alamar Blue and Au(III) cleaved DNA t...

Back to Top