THMs removal from aqueous solution using hydrochar enhanced by chitosan nanoparticles: preparation, characterization, kinetics, equilibrium studies
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Y. Awad | H. Jahin | G. Khairy | A. Hesham | S. El-korashy
[1] S. Rizk,et al. Microwave-Assisted Hydrothermal Preparation of Magnetic Hydrochar for the Removal of Organophosphorus Insecticides from Aqueous Solutions , 2023, SSRN Electronic Journal.
[2] M. M. Pitoi,et al. Chlorination disinfection by-products in Southeast Asia: A review on potential precursor, formation, toxicity assessment, and removal technologies. , 2023, Chemosphere.
[3] Guilin He,et al. The occurrence, formation and transformation of disinfection byproducts in the water distribution system: A review. , 2023, The Science of the total environment.
[4] M. Kogevinas,et al. Global assessment of chemical quality of drinking water: The case of trihalomethanes. , 2023, Water research.
[5] H. Jahin,et al. Green Synthesis of a novel eco-friendly hydrochar from Pomegranate peels loaded with iron nanoparticles for the removal of copper ions and methylene blue from aqueous solutions , 2022, Journal of Molecular Liquids.
[6] G. Cappai,et al. Processes, applications and legislative framework for carbonized anaerobic digestate: Opportunities and bottlenecks. A critical review , 2022, Energy Conversion and Management.
[7] N. Zouari,et al. Development and application of bio-waste-derived adsorbents for the removal of boron from groundwater , 2022, Groundwater for Sustainable Development.
[8] Martins O. Omorogie,et al. Biomass-based hydrothermal carbons for catalysis and environmental cleanup: a review , 2022, Green Chemistry Letters and Reviews.
[9] A. Shahat,et al. Mesoporous iron oxide nano spheres for capturing organic dyes from water sources , 2020 .
[10] A. Shahat,et al. Synthesis and characterization of ZnO nanoparticles via zeolitic imidazolate framework-8 and its application for removal of dyes , 2020, Journal of Molecular Structure.
[11] Xueyong Zhou. Correction to the calculation of Polanyi potential from Dubinnin-Rudushkevich equation. , 2020, Journal of hazardous materials.
[12] A. Hesham,et al. Enhancing the adsorption of disinfection by-products onto activated carbon using TiO2 nanoparticles , 2019, International Journal of Chemistry and Technology.
[13] S. Yousefinejad,et al. Removal of methylene blue dye from aqueous solutions by natural clinoptilolite and clinoptilolite modified by iron oxide nanoparticles , 2019, Molecular Simulation.
[14] M. Sillanpää,et al. Development of iron oxide/activated carbon nanoparticle composite for the removal of Cr(VI), Cu(II) and Cd(II) ions from aqueous solution , 2018, Water Resources and Industry.
[15] Yin Li,et al. Adsorption of Cu(II) and Zn(II) Ions from Aqueous Solution by Gel/PVA-Modified Super-Paramagnetic Iron Oxide Nanoparticles , 2018, Molecules.
[16] M. Hassan. A promising hydroxyapatite/graphene hybrid nanocomposite for methylene blue dye’s removal in wastewater treatment , 2018 .
[17] S. Sudjarwo,et al. Immunostimulatory Activity of Chitosan Nanoparticles on Wistar Albino Rats , 2018, Pharmacognosy Journal.
[18] Youning Chen,et al. Four different kinds of peels as adsorbents for the removal of Cd (II) from aqueous solution: Kinetics, isotherm and mechanism , 2018, Journal of the Taiwan Institute of Chemical Engineers.
[19] O. S. Bello,et al. Mesoporous activated carbon from Pentace species sawdust via microwave-induced KOH activation: optimization and methylene blue adsorption , 2018, Research on Chemical Intermediates.
[20] Djamel Ghernaout,et al. Disinfection and DBPs removal in drinking water treatment: A perspective for a green technology , 2018 .
[21] H. Hasan,et al. An overview of the technology used to remove trihalomethane (THM), trihalomethane precursors, and trihalomethane formation potential (THMFP) from water and wastewater , 2018 .
[22] Y. Ok,et al. Minireview of potential applications of hydrochar derived from hydrothermal carbonization of biomass , 2018 .
[23] M. Konsolakis,et al. Ultrasound-assisted removal of Acid Red 17 using nanosized Fe3O4-loaded coffee waste hydrochar. , 2017, Ultrasonics sonochemistry.
[24] G. Greenway,et al. Microwave-assisted hydrothermal carbonization of rapeseed husk: A strategy for improving its solid fuel properties , 2016 .
[25] B. Gao,et al. Performance of activated carbon/nanoscale zero-valent iron for removal of trihalomethanes (THMs) at infinitesimal concentration in drinking water , 2014 .
[26] G. Shaw,et al. Chlorine disinfection by-products in wastewater effluent: Bioassay-based assessment of toxicological impact. , 2012, Water research.
[27] B. Jefferson,et al. A critical review of trihalomethane and haloacetic acid formation from natural organic matter surrogates , 2012 .
[28] J. Deng,et al. Synthesis and characterization of chitosan/ZnO nanoparticle composite membranes. , 2010, Carbohydrate research.
[29] B. Jefferson,et al. Disinfection byproduct formation and fractionation behavior of natural organic matter surrogates. , 2009, Environmental science & technology.
[30] Xin Yang,et al. DPB formation in breakpoint chlorination of wastewater. , 2005, Water research.
[31] Chungsying Lu,et al. Adsorption of trihalomethanes from water with carbon nanotubes. , 2005, Water research.
[32] W. R. Clayton,et al. Application of Elovich equation to the kinetics of phosphate release and sorption in soils. , 1980 .
[33] I. Langmuir. THE ADSORPTION OF GASES ON PLANE SURFACES OF GLASS, MICA AND PLATINUM. , 1918 .
[34] T. Mahmud,et al. Use of Agro-waste Musa acuminata and Solanum tuberosum peels for economical sorptive removal of Emerald green dye in ecofriendly way , 2019, Journal of Cleaner Production.
[35] K. Dewi,et al. Hydrothermal carbonization of biomass waste under low temperature condition , 2018 .
[36] G. Blanchard,et al. Removal of heavy metals from waters by means of natural zeolites , 1984 .
[37] C. Travis,et al. Survey of sorption relationships for reactive solutes in soil , 1981 .