The high concentration of metal compounds found in red mud (RM) can serve as cost-effective raw materials for photo Fenton catalysts in the treatment of organic dye wastewater. In this study, RM was modified with bagasse using a hydrothermal method to prepare a photo-Fenton catalyst. The degradation efficiency of Rhodamine (RhB) solution under different conditions was evaluated. In a reactive system with a catalyst concentration of 1 g/L, RhB concentration of 20 mg/L, reaction pH of 6.1 and HO concentration of 0.0485 mol/L, the degradation rate of RhB reached 86.88% after 110 min of reaction. RhB exhibited a consistently high degradation rate across 6 experimental cycles. Toxicity experiments confirmed that the concentration of heavy metal ions in the liquid phase fell within national standards. Real dye wastewater was tested under natural sunlight, with results indicating a 64.31% reduction in COD(Chemical Oxygen Demand) and a 47.63% decrease in TOC(Total Organic Carbon) after 220 min of treatment. The biodegradability of dye wastewater had also been significantly improved. These findings strongly support the green and sustainable development of the printing and dyeing industry, which also offer important solutions for the utilization of massive industrial solid waste and agricultural solid waste.
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http://dx.doi.org/10.1016/j.envres.2024.120608 | DOI Listing |
Sci Rep
December 2024
School of Physics and Materials Science, Shoolini University, Solan, H.P., India.
The industrial sector faces a significant challenge in finding the highly effective and efficient treatments for harmful dye-based color effluents. In this study, pure and cobalt doped barium hexaferrite of chemical formula, BaCoFeO (x = 0-0.06) are made via sol-gel auto-combustion (SC) methodology.
View Article and Find Full Text PDFMembranes (Basel)
November 2024
CONAHCYT-Centro de Investigación Científica de Yucatán, A.C., Calle 43 No. 130, Chuburná de Hidalgo, Mérida 97200, Yucatán, Mexico.
The recovery and reuse of high-impact polystyrene (HIPS) into high-value products is crucial for reducing environmental thermoplastics waste and promoting sustainable materials for various applications. In this study, asymmetric membranes obtained from sulfonated HIPS waste were used for salt and dye removals. The incorporation of sulfonic acid (-SOH) groups into HIPS waste by direct chemical sulfonation with chlorosulfonic acid (CSA), at two different concentrations, was investigated to impart antifouling properties in membranes for water treatment.
View Article and Find Full Text PDFGels
December 2024
Research Center for Green Energy Systems, Department of Mechanical Engineering, Gachon University, Seongnam-si 13120, Republic of Korea.
This study aims to develop efficient and sustainable hydrogels for dye adsorption, addressing the critical need for improved wastewater treatment methods. Carboxymethyl cellulose (CMC)-based hydrogels grafted with AAc were synthesized using gamma radiation polymerization. Various AAc to CMC ratios (5:5, 5:7.
View Article and Find Full Text PDFGels
November 2024
Department of Chemistry, Helwan University, Ain-Helwan 11795, Egypt.
Environmentally friendly nanoporous gels are tailor-designed and employed in the adsorption of toxic organic pollutants in wastewater. To ensure the maximum adsorption of the contaminant molecules by the gels, molecular modeling techniques were used to evaluate the binding affinity between the toxic organic contaminants such as methylene blue (MB) and Congo red (CR) and various biopolymers. To generate nanopores in the matrix of the polymeric gels, salt crystals were used as porogen.
View Article and Find Full Text PDFEnviron Res
December 2024
School of Architecture, Civil, Environmental and Energy Engineering, Kyungpook National University, 80 Daehak-ro, Buk-gu, Daegu 41566, Republic of Korea. Electronic address:
Highly efficient photocatalysts for degrading persistent antibiotics and synthetic dye pollutants under visible light are crucial for sustainable environmental remediation. In this study, we engineered a novel BiMoO (BMO)/NiAl-LDH (layered double hydroxide) hybrid catalyst with a unique 2D/2D heterostructure, optimized for the visible-light-driven elimination of ciprofloxacin (CPF) and hazardous synthetic dyes such as rhodamine B and methylene blue. The optimized BMO-30/LDH hybrid demonstrated exceptional photocatalytic performance, achieving nearly complete degradation of CPF and synthetic dyes with high mineralization efficiency, surpassing many previously reported state-of-the-art photocatalysts.
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