Javascript must be enabled to continue!
Modification of sugarcane bagasse with iron(III) oxide-hydroxide to improve its adsorption property for removing lead(II) ions
View through CrossRef
AbstractLead contamination in wastewater results in toxicity of aquatic life and water quality, it is recommended to remove lead before discharging. Four sugarcane bagasse adsorbent materials of sugarcane bagasse powder (SB), sugarcane bagasse powder doped iron(III) oxide-hydroxide (SBF), sugarcane bagasse powder beads (SBB), and sugarcane bagasse powder doped iron(III) oxide-hydroxide beads (SBFB) were synthesized and characterized with various techniques. Their lead removal efficiencies were investigated by batch experiments on the effects of dose (0.1–0.6 g), contact time (1–6 h), pH (1, 3, 5, 7, 9, 11), and concentration (5–30 mg/L), adsorption isotherms, kinetics, and desorption experiments. All materials were amorphous phases presenting specific peaks of cellulose. SBB and SBFB detected sodium alginate peaks, and iron(III) oxide-hydroxide peaks were detected in SBF and SBFB. SB and SBF were scales or overlapping plate surfaces whereas SBB and SBFB had spherical shapes with coarse surfaces. The main functional groups of O–H, C=O, C–H, C–O, and C=C were observed in all materials, whereas Fe–O and –COOH were only found in materials with adding iron(III) oxide-hydroxide or bead material. The point of zero charges (pHpzc) of all materials was higher than 4. The optimum conditions of SB, SBF, SBB, and SBFB with the highest lead removal efficiency at a lead concentration of 10 mg/L and pH 5 were 0.6 g and 6 h (96.08%), 0.2 g and 3 h (100%), 0.2 g and 2 h (98.22%), and 0. 1 g and 2 h (100%), respectively. Since SBFB spent less adsorbent dose and contact time than other materials with a lead removal efficiency of 100%, it was a more potential adsorbent than other materials. Thus, adding iron(III) oxide-hydroxide and changing material form helped to improve material efficiencies for lead adsorption. The maximum adsorption capacities of SB, SBF, SBB, and SBFB were 6.161, 27.027, 23.697, and 57.471 mg/L, respectively by fitting the Langmuir model. Langmuir isotherm was best fitted for SB and SBB, whereas the Freundlich model was best fitted for SBF and SBFB. The pseudo-second-order kinetic model was best fitted for all materials. Moreover, all adsorbents could be reused for more than 5 cycles with the lead removal efficiency of more than 73%. Therefore, SBFB was potential material to further apply for lead removal in industrial applications.
Springer Science and Business Media LLC
Title: Modification of sugarcane bagasse with iron(III) oxide-hydroxide to improve its adsorption property for removing lead(II) ions
Description:
AbstractLead contamination in wastewater results in toxicity of aquatic life and water quality, it is recommended to remove lead before discharging.
Four sugarcane bagasse adsorbent materials of sugarcane bagasse powder (SB), sugarcane bagasse powder doped iron(III) oxide-hydroxide (SBF), sugarcane bagasse powder beads (SBB), and sugarcane bagasse powder doped iron(III) oxide-hydroxide beads (SBFB) were synthesized and characterized with various techniques.
Their lead removal efficiencies were investigated by batch experiments on the effects of dose (0.
1–0.
6 g), contact time (1–6 h), pH (1, 3, 5, 7, 9, 11), and concentration (5–30 mg/L), adsorption isotherms, kinetics, and desorption experiments.
All materials were amorphous phases presenting specific peaks of cellulose.
SBB and SBFB detected sodium alginate peaks, and iron(III) oxide-hydroxide peaks were detected in SBF and SBFB.
SB and SBF were scales or overlapping plate surfaces whereas SBB and SBFB had spherical shapes with coarse surfaces.
The main functional groups of O–H, C=O, C–H, C–O, and C=C were observed in all materials, whereas Fe–O and –COOH were only found in materials with adding iron(III) oxide-hydroxide or bead material.
The point of zero charges (pHpzc) of all materials was higher than 4.
The optimum conditions of SB, SBF, SBB, and SBFB with the highest lead removal efficiency at a lead concentration of 10 mg/L and pH 5 were 0.
6 g and 6 h (96.
08%), 0.
2 g and 3 h (100%), 0.
2 g and 2 h (98.
22%), and 0.
1 g and 2 h (100%), respectively.
Since SBFB spent less adsorbent dose and contact time than other materials with a lead removal efficiency of 100%, it was a more potential adsorbent than other materials.
Thus, adding iron(III) oxide-hydroxide and changing material form helped to improve material efficiencies for lead adsorption.
The maximum adsorption capacities of SB, SBF, SBB, and SBFB were 6.
161, 27.
027, 23.
697, and 57.
471 mg/L, respectively by fitting the Langmuir model.
Langmuir isotherm was best fitted for SB and SBB, whereas the Freundlich model was best fitted for SBF and SBFB.
The pseudo-second-order kinetic model was best fitted for all materials.
Moreover, all adsorbents could be reused for more than 5 cycles with the lead removal efficiency of more than 73%.
Therefore, SBFB was potential material to further apply for lead removal in industrial applications.
Related Results
Zeolite A powder and beads from sugarcane bagasse fly ash modified with iron(III) oxide-hydroxide for lead adsorption
Zeolite A powder and beads from sugarcane bagasse fly ash modified with iron(III) oxide-hydroxide for lead adsorption
AbstractThe discharging of lead-contaminated wastewater is a concern because of its toxicity to living organisms and water quality resulting in dangerous water consumption, so it i...
Investigation of α-Cellulose Content of Sugarcane Scrappings and Bagasse as Tablet Disintegrant
Investigation of α-Cellulose Content of Sugarcane Scrappings and Bagasse as Tablet Disintegrant
The aim of this study is to investigate the physicochemical and disintegrant properties of α – cellulose obtained from sugarcane scrapings and bagasse. The mechanical and release p...
The effect of heavy metal composition on the performance of sugarcane bagasse as an adsorbant in water treatment
The effect of heavy metal composition on the performance of sugarcane bagasse as an adsorbant in water treatment
Wastewater produced by the industries is potentially harmful to the ecosystem because of various contaminants like heavy metals that find their way into soil and water supplies. In...
Development of High Performance in Bituminous Mixtures incorporating Sugarcane Bagasse Ash
Development of High Performance in Bituminous Mixtures incorporating Sugarcane Bagasse Ash
This study investigates the potential of sugarcane bagasse ash as an additive in bituminous mixtures to enhance mechanical properties while promoting sustainability through agricul...
Optimizing nutrient and irrigation requirement of sugarcane (Saccharum species hybrid complex) and French bean (Phaseolus vulgaris) intercropping system
Optimizing nutrient and irrigation requirement of sugarcane (Saccharum species hybrid complex) and French bean (Phaseolus vulgaris) intercropping system
A field experiment was conducted during 201013, on a sandy-loam soil at Pusa, Bihar to find out optimum nu- trient and irrigation requirement of French bean (Phaseolus vulgaris L.)...
Bagasse from Sugarcane: A Sustainable Substitute for Paper Manufacturing
Bagasse from Sugarcane: A Sustainable Substitute for Paper Manufacturing
Abstract:
The global demand for paper products continues to rise, placing pressure on traditional wood-based paper production methods. This review
highlights th...
High quality sugarcane bagasse-citric acid particleboards
High quality sugarcane bagasse-citric acid particleboards
AbstractThe productivity of Indonesian sugarcane plantation, especially in East Java province reached 1.186.515 tonnes in 2017. Sugarcane liquid is extracted as sugar raw material ...

