Remediation of water polluted with model endocrine disruptors based on adsorption processes
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[1] Fernando Gomes de Souza,et al. Adsorption of Diuron from aqueous solution onto commercial organophilic clay: kinetic, equilibrium and thermodynamic study. , 2020 .
[2] A. Bhatnagar,et al. Tuning tetracycline removal from aqueous solution onto activated 2:1 layered clay mineral: Characterization, sorption and mechanistic studies. , 2020, Journal of hazardous materials.
[3] M. Arias-Estévez,et al. Competitive adsorption/desorption of tetracycline, oxytetracycline and chlortetracycline on pine bark, oak ash and mussel shell. , 2019, Journal of environmental management.
[4] Nengwu Zhu,et al. Batch interaction of emerging tetracycline contaminant with novel phosphoric acid activated corn straw porous carbon: Adsorption rate and nature of mechanism. , 2019, Environmental research.
[5] G. Zeng,et al. Metal-organic frameworks derived magnetic carbon-αFe/Fe3C composites as a highly effective adsorbent for tetracycline removal from aqueous solution , 2019, Chemical Engineering Journal.
[6] Daniel C W Tsang,et al. Mechanistic insight into efficient removal of tetracycline from water by Fe/graphene , 2019, Chemical Engineering Journal.
[7] I. Ali,et al. High performance removal and simulation studies of diuron pesticide in water on MWCNTs , 2019, Journal of Molecular Liquids.
[8] Thanh Son Le,et al. Adsorption characteristics of molecular oxytetracycline onto alumina particles: The role of surface modification with an anionic surfactant , 2019, Journal of Molecular Liquids.
[9] T. Vo,et al. Influence of pyrolysis temperature on polycyclic aromatic hydrocarbons production and tetracycline adsorption behavior of biochar derived from spent coffee ground. , 2019, Bioresource technology.
[10] E. Vasile,et al. Cellulose acetate/layered double hydroxide adsorptive membranes for efficient removal of pharmaceutical environmental contaminants. , 2019, Carbohydrate polymers.
[11] Y. Ok,et al. Clay-biochar composites for sorptive removal of tetracycline antibiotic in aqueous media. , 2019, Journal of environmental management.
[12] Xuechun Wang,et al. Novel one step preparation of a 3D alginate based MOF hydrogel for water treatment , 2019, New Journal of Chemistry.
[13] Jiachao Zhang,et al. Carbon-based materials as adsorbent for antibiotics removal: Mechanisms and influencing factors. , 2019, Journal of environmental management.
[14] J. Reiss,et al. Antibiotic pollution in surface fresh waters: Occurrence and effects. , 2019, The Science of the total environment.
[15] Feng Chen,et al. NiFe2O4@ nitrogen-doped carbon hollow spheres with highly efficient and recyclable adsorption of tetracycline , 2019, RSC advances.
[16] I. Ali,et al. Graphene based adsorbents for remediation of noxious pollutants from wastewater. , 2019, Environment international.
[17] S. Dube,et al. Removal of Multi-Class Antibiotic Drugs from Wastewater Using Water-Soluble Protein of Moringa stenopetala Seeds , 2019, Water.
[18] Xin Li,et al. Mn-doped zirconium metal-organic framework as an effective adsorbent for removal of tetracycline and Cr(VI) from aqueous solution , 2019, Microporous and Mesoporous Materials.
[19] G. Owens,et al. Simultaneous removal of tetracycline and oxytetracycline antibiotics from wastewater using a ZIF-8 metal organic-framework. , 2019, Journal of hazardous materials.
[20] Wu Lei,et al. Adsorption properties, kinetics & thermodynamics of tetracycline on carboxymethyl-chitosan reformed montmorillonite. , 2019, International journal of biological macromolecules.
[21] Dongsheng Wang,et al. Preparation of magnetic polyimide@ Mg-Fe layered double hydroxides core-shell composite for effective removal of various organic contaminants from aqueous solution. , 2019, Chemosphere.
[22] Ran Shang,et al. Study on adsorption of tetracycline by Cu-immobilized alginate adsorbent from water environment. , 2019, International journal of biological macromolecules.
[23] W. Chu,et al. Environmental Remediation Applications of Carbon Nanotubes and Graphene Oxide: Adsorption and Catalysis , 2019, Nanomaterials.
[24] Xingmei Liu,et al. Novel insight into adsorption and co-adsorption of heavy metal ions and an organic pollutant by magnetic graphene nanomaterials in water , 2019, Chemical Engineering Journal.
[25] Zhi Song,et al. The residual tetracycline in pharmaceutical wastewater was effectively removed by using MnO2/graphene nanocomposite. , 2019, The Science of the total environment.
[26] Yaoyu Zhou,et al. Analyses of tetracycline adsorption on alkali-acid modified magnetic biochar: Site energy distribution consideration. , 2019, The Science of the total environment.
[27] Xin Li,et al. Cu and Co nanoparticles co-doped MIL-101 as a novel adsorbent for efficient removal of tetracycline from aqueous solutions. , 2019, The Science of the total environment.
[28] J. Noveron,et al. Removal of methylene blue and tetracycline from water using peanut shell derived adsorbent prepared by sulfuric acid reflux , 2019, Journal of Environmental Chemical Engineering.
[29] H. Jang,et al. A novel hay-derived biochar for removal of tetracyclines in water. , 2019, Bioresource technology.
[30] Aliakbar Dehghan,et al. Tetracycline removal from aqueous solutions using zeolitic imidazolate frameworks with different morphologies: A mathematical modeling. , 2019, Chemosphere.
[31] Matthias Wessling,et al. Aqueous-Phase Temperature Swing Adsorption for Pesticide Removal. , 2019, Environmental science & technology.
[32] Yueping Fang,et al. Strong adsorption of tetracycline hydrochloride on magnetic carbon-coated cobalt oxide nanoparticles. , 2019, Chemosphere.
[33] Yingjie Dai,et al. Adsorption of tetracycline in aqueous solution by biochar derived from waste Auricularia auricula dregs. , 2019, Chemosphere.
[34] Yingjie Dai,et al. Adsorption characteristics of tetracycline on biochar from agricultural wastes , 2019, DESALINATION AND WATER TREATMENT.
[35] F. Gao,et al. New use for spent coffee ground as an adsorbent for tetracycline removal in water. , 2019, Chemosphere.
[36] Q. You,et al. Highly efficient removal of antibiotics and dyes from water by the modified carbon nanofibers composites with abundant mesoporous structure , 2018, Colloids and Surfaces A: Physicochemical and Engineering Aspects.
[37] Wu Lei,et al. Facile hydrothermal synthesis of magnetic adsorbent CoFe2O4/MMT to eliminate antibiotics in aqueous phase: tetracycline and ciprofloxacin , 2018, Environmental Science and Pollution Research.
[38] G. Zeng,et al. Multi-walled carbon nanotube/amino-functionalized MIL-53(Fe) composites: Remarkable adsorptive removal of antibiotics from aqueous solutions. , 2018, Chemosphere.
[39] Wenxiu cao,et al. Removal of tetracycline from aqueous solution by MOF/graphite oxide pellets: Preparation, characteristic, adsorption performance and mechanism. , 2018, Ecotoxicology and environmental safety.
[40] Shi-huai Deng,et al. Sorption of tetracycline on H3PO4 modified biochar derived from rice straw and swine manure. , 2018, Bioresource technology.
[41] R. Keiski,et al. Steam activation of waste biomass: highly microporous carbon, optimization of bisphenol A, and diuron adsorption by response surface methodology , 2018, Environmental Science and Pollution Research.
[42] Q. You,et al. Magnetically hyper-cross-linked polymers with well-developed mesoporous: a broad-spectrum and highly efficient adsorbent for water purification , 2018, Journal of Materials Science.
[43] Hoejin Kim,et al. Green synthesis of a highly efficient biosorbent for organic, pharmaceutical, and heavy metal pollutants removal: Engineering surface chemistry of polymeric biomass of spent coffee waste , 2018, Journal of Water Process Engineering.
[44] Xin Gao,et al. Honeycomb tubular biochar from fargesia leaves as an effective adsorbent for tetracyclines pollutants , 2018, Journal of the Taiwan Institute of Chemical Engineers.
[45] Hoejin Kim,et al. Adsorption of methylene blue and tetracycline onto biomass-based material prepared by sulfuric acid reflux , 2018, RSC advances.
[46] Jun Hu,et al. Induced-fit adsorption of diol-based porous organic polymers for tetracycline removal. , 2018, Chemosphere.
[47] Zhi Song,et al. Removal of tetracycline residue from pharmaceutical wastewater by using 3D composite film , 2018, Chemical Engineering Journal.
[48] Beibei Tang,et al. The Presence of Cu Facilitates Adsorption of Tetracycline (TC) onto Water Hyacinth Roots , 2018, International journal of environmental research and public health.
[49] Bin Xie,et al. Thermal treatment of biochar in the air/nitrogen atmosphere for developed mesoporosity and enhanced adsorption to tetracycline. , 2018, Bioresource technology.
[50] Chongli Zhong,et al. Synthesis of hierarchical-pore metal-organic framework on liter scale for large organic pollutants capture in wastewater. , 2018, Journal of colloid and interface science.
[51] María Eugenia Roca Jalil,et al. Silica Pillared Montmorillonites as Possible Adsorbents of Antibiotics from Water Media , 2018, Applied Sciences.
[52] Md Ariful Ahsan,et al. Biomass conversion of saw dust to a functionalized carbonaceous materials for the removal of Tetracycline, Sulfamethoxazole and Bisphenol A from water , 2018, Journal of Environmental Chemical Engineering.
[53] Md Ariful Ahsan,et al. Adsorptive removal of methylene blue, tetracycline and Cr(VI) from water using sulfonated tea waste , 2018, Environmental Technology & Innovation.
[54] Gang Yu,et al. Hydrophilic and strengthened 3D reduced graphene oxide/nano-Fe3O4 hybrid hydrogel for enhanced adsorption and catalytic oxidation of typical pharmaceuticals , 2018 .
[55] D. Mantovani,et al. Assessment of the use of Moringa oleifera seed husks for removal of pesticide diuron from contaminated water , 2018, Environmental technology.
[56] A. Hosseinzadeh,et al. Enhanced removal of tetracycline using modified sawdust: Optimization, isotherm, kinetics, and regeneration studies , 2018, Process Safety and Environmental Protection.
[57] Sunkyu Park,et al. Adsorption isotherm, kinetic modeling and mechanism of tetracycline on Pinus taeda-derived activated biochar. , 2018, Bioresource technology.
[58] Matthias Wessling,et al. Preliminary Study on the Application of Temperature Swing Adsorption in Aqueous Phase for Pesticide Removal , 2018, IOP Conference Series: Earth and Environmental Science.
[59] Ning Gan,et al. Detection and removal of antibiotic tetracycline in water with a highly stable luminescent MOF , 2018, Sensors and Actuators B: Chemical.
[60] G. Zeng,et al. Adsorption of tetracycline antibiotics from aqueous solutions on nanocomposite multi-walled carbon nanotube functionalized MIL-53(Fe) as new adsorbent. , 2018, The Science of the total environment.
[61] Guangshan Zhang,et al. Ce-Mn modify Al2O3 adsorbent and the effect on adsorption and regeneration properties , 2018, Environmental Science and Pollution Research.
[62] A. Ofomaja,et al. Degree of time dependency of kinetic coefficient as a function of adsorbate concentration; new insights from adsorption of tetracycline onto monodispersed starch-stabilized magnetic nanocomposite. , 2018, Journal of environmental management.
[63] Aimin Li,et al. Ultrahigh selective adsorption of zwitterionic PPCPs both in the absence and presence of humic acid: Performance and mechanism. , 2018, Journal of hazardous materials.
[64] J. Noveron,et al. Conversion of waste tire rubber into a high-capacity adsorbent for the removal of methylene blue, methyl orange, and tetracycline from water , 2018 .
[65] J. Rivera-Utrilla,et al. Removal of Tetracyclines from Water by Adsorption/Bioadsorption and Advanced Oxidation Processes. A Short Review , 2018, Current Organic Chemistry.
[66] G. Zeng,et al. Sustainable efficient adsorbent: alkali-acid modified magnetic biochar derived from sewage sludge for aqueous organic contaminant removal , 2018 .
[67] B. Dash,et al. Layered double hydroxides: A brief review from fundamentals to application as evolving biomaterials , 2018 .
[68] A. Oladipo,et al. Highly efficient magnetic chicken bone biochar for removal of tetracycline and fluorescent dye from wastewater: Two-stage adsorber analysis. , 2018, Journal of environmental management.
[69] S. Sobhanardakani,et al. Novel mesoporous Fe3O4/SiO2/CTAB–SiO2 as an effective adsorbent for the removal of amoxicillin and tetracycline from water , 2018, Clean Technologies and Environmental Policy.
[70] Dongsheng Wang,et al. Removal of Typical Organic Contaminants with a Recyclable Calcined Chitosan-Supported Layered Double Hydroxide Adsorbent: Kinetics and Equilibrium Isotherms , 2018 .
[71] X. Wu,et al. Simultaneous removal of tetracycline and Cu(ii) by adsorption and coadsorption using oxidized activated carbon , 2018, RSC advances.
[72] Xinlong Fan,et al. Preparation of Magnetic Hyper-Cross-Linked Polymers for the Efficient Removal of Antibiotics from Water , 2018 .
[73] J. Cuevas,et al. Comparative adsorption of tetracyclines on biochars and stevensite: Looking for the most effective adsorbent , 2017, Applied Clay Science.
[74] S. Y. Reyes-López,et al. Tetracycline adsorption on steam alternative activated carbon: kinetic and thermodynamic parameters , 2018 .
[75] Aiqin Wang,et al. Magnetic chitosan-based adsorbent prepared via Pickering high internal phase emulsion for high-efficient removal of antibiotics. , 2018, International journal of biological macromolecules.
[76] S. Jhung,et al. Adsorptive removal of herbicides from water over nitrogen-doped carbon obtained from ionic liquid@ZIF-8 , 2017 .
[77] B. Tan,et al. Hypercrosslinked porous polymer materials: design, synthesis, and applications. , 2017, Chemical Society reviews.
[78] R. Nogales,et al. Sorption potential of different biomass fly ashes for the removal of diuron and 3,4-dichloroaniline from water. , 2017, Journal of hazardous materials.
[79] P. Mourão,et al. Synthetic polymers blend used in the production of high activated carbon for pesticides removals from liquid phase , 2017, Environmental technology.
[80] P. Mourão,et al. Valorisation of Natural Fibres from African Baobab Wastes by the Production of Activated Carbons for Adsorption of Diuron , 2017 .
[81] Shiping Zhu,et al. Development of Novel Materials from Polymerization of Pickering Emulsion Templates , 2017 .
[82] B. Adnadjevic,et al. Comparison of adsorbent materials for herbicide diuron removal from water. , 2016 .
[83] C. Tarley,et al. Study on the cross-linked molecularly imprinted poly(methacrylic acid) and poly(acrylic acid) towards selective adsorption of diuron , 2016 .
[84] B. Kulkarni,et al. Adsorptive removal of diuron on biomass ashes: a comparative study using rice husk ash and bagasse fly ash as adsorbents , 2016 .
[85] E. C. Abdullah,et al. Applications of graphene and its derivatives as an adsorbent for heavy metal and dye removal: a systematic and comprehensive overview , 2015 .
[86] Zheng Gu,et al. Montmorillonite Functionalized with Zwitterionic Surfactant as a Highly Efficient Adsorbent for Herbicides , 2015 .
[87] Hua Yang,et al. Aqueous adsorption and removal of organic contaminants by carbon nanotubes. , 2014, The Science of the total environment.
[88] Patrick Drogui,et al. Tetracycline antibiotics in the environment: a review , 2013, Environmental Chemistry Letters.
[89] Kung-cheh Li,et al. Comparative study on electro-microfiltration (EMF) of water containing different carbon nanotubes (CNTs). , 2013, Water science and technology : a journal of the International Association on Water Pollution Research.
[90] S. Jhung,et al. Adsorptive removal of hazardous materials using metal-organic frameworks (MOFs): a review. , 2013, Journal of hazardous materials.
[91] Yang Deng,et al. Multiwalled carbon nanotubes as adsorbents for removal of herbicide diuron from aqueous solution , 2012 .
[92] A. Amrane,et al. Relevance of Photocatalysis prior to Biological Treatment of Organic Pollutants - Selection Criteria , 2012 .
[93] A. Keller,et al. Magnetic pollen grains as sorbents for facile removal of organic pollutants in aqueous media. , 2011, Journal of hazardous materials.
[94] Qian Liu,et al. Graphene and graphene oxide sheets supported on silica as versatile and high-performance adsorbents for solid-phase extraction. , 2011, Angewandte Chemie.
[95] F. Carrasco-Marín,et al. Activated carbon cloth as adsorbent and oxidation catalyst for the removal of amitrole from aqueous solution , 2011 .
[96] Masaaki Nagatsu,et al. Carbon nanotubes as adsorbents in environmental pollution management: A review , 2011 .
[97] X. Shan,et al. Adsorption of diuron and dichlobenil on multiwalled carbon nanotubes as affected by lead. , 2011, Journal of hazardous materials.
[98] R. Ruoff,et al. Graphene-based ultracapacitors. , 2008, Nano letters.
[99] C. Moreno-Castilla,et al. Kinetics of diuron and amitrole adsorption from aqueous solution on activated carbons. , 2008, Journal of hazardous materials.
[100] M. Elimelech,et al. Environmental applications of carbon-based nanomaterials. , 2008, Environmental science & technology.
[101] Dan Li,et al. Graphene-Based Materials , 2008, Science.
[102] J. L. Ovelleiro,et al. Pesticides removal in the process of drinking water production. , 2008, Chemosphere.
[103] J. Bollinger,et al. Adsorption of diuron and its degradation products from aqueous solution by surfactant-modified pillared clays , 2007 .
[104] C. Moreno-Castilla,et al. Removal of diuron and amitrole from water under static and dynamic conditions using activated carbons in form of fibers, cloth, and grains. , 2007, Water research.
[105] C. Moreno-Castilla,et al. Effect of surface chemistry, solution pH, and ionic strength on the removal of herbicides diuron and amitrole from water by an activated carbon fiber. , 2007, Langmuir : the ACS journal of surfaces and colloids.
[106] C. Moreno-Castilla,et al. Temperature dependence of herbicide adsorption from aqueous solutions on activated carbon fiber and cloth. , 2006, Langmuir : the ACS journal of surfaces and colloids.
[107] C. Moreno-Castilla,et al. About the endothermic nature of the adsorption of the herbicide diuron from aqueous solutions on activated carbon fiber , 2006 .
[108] S. H. Kim,et al. Effects of activated carbon types and service life on removal of endocrine disrupting chemicals: amitrol, nonylphenol, and bisphenol-A. , 2005, Chemosphere.
[109] N. Cochet,et al. Environmental impact of diuron transformation: a review. , 2004, Chemosphere.
[110] C. Moreno-Castilla. Adsorption of organic molecules from aqueous solutions on carbon materials , 2004 .
[111] L. Shore,et al. Endocrine disruptors in the environment (IUPAC Technical Report) , 2003 .
[112] C. Moreno-Castilla,et al. Carbon materials as adsorbents in aqueous solutions , 2000 .
[113] J. T. Kloprogge,et al. Synthesis of Smectites and Porous Pillared Clay Catalysts: A Review , 1998 .