Citric acid enhanced oxytetracycline degradation by Fe(Ⅲ)/peracetic acid: Performance, mechanism and influence factors
暂无分享,去创建一个
Zhenran Wang | L. Tian | Yongsheng Fu | Yiqing Liu | Dandan Zhao | Lin Tian
[1] Zhenran Wang,et al. FeCu-coal gangue heterogeneous activation of peracetic acid for degradation of sulfamethoxazole , 2023, Journal of Environmental Chemical Engineering.
[2] Y. Liu,et al. Multivalent metal catalysts in Fenton/Fenton-like oxidation system: A critical review , 2023, Chemical Engineering Journal.
[3] T. Jiao,et al. Peracetic acid activation by natural chalcopyrite for metronidazole degradation: Unveiling the effects of Cu-Fe bimetallic sites and sulfur species , 2023, Separation and Purification Technology.
[4] Zong-ping Wang,et al. New insights into the degradation of micro-pollutants in the hydroxylamine enhanced Fe(II)/peracetic acid process: Contribution of reactive species and effects of pH. , 2022, Journal of hazardous materials.
[5] Gaofeng Zhou,et al. Activated peracetic acid by Mn3O4 for sulfamethoxazole degradation: A novel heterogeneous advanced oxidation process. , 2022, Chemosphere.
[6] Yijie Zhao,et al. Enhanced degradation of sulfamethoxazole by microwave-activated peracetic acid under alkaline condition: Influencing factors and mechanism , 2022, Separation and Purification Technology.
[7] V. Sharma,et al. Enhanced Degradation of Micropollutants in a Peracetic Acid-Fe(III) System with Picolinic Acid. , 2022, Environmental science & technology.
[8] Jun Ma,et al. Molybdenum disulfide (MoS2) promoted sulfamethoxazole degradation in the Fe(III)/peracetic acid process , 2022, Separation and Purification Technology.
[9] Zhenran Wang,et al. HCO3–/CO32– enhanced degradation of diclofenac by Cu(II)-activated peracetic acid: Efficiency and mechanism , 2021 .
[10] T. Jiao,et al. Peracetic acid enhanced electrochemical advanced oxidation for organic pollutant elimination , 2021 .
[11] Jing Deng,et al. Enhanced Performance of Fe(III)/persulfate for the Degradation of DEET: Working Mechanism of Ascorbic Acid , 2021, Separation and Purification Technology.
[12] Zuoming Zhou,et al. Activation of peracetic acid with zero-valent iron for tetracycline abatement: The role of Fe(II) complexation with tetracycline. , 2021, Journal of hazardous materials.
[13] Jiewen Deng,et al. Phosphate-induced activation of peracetic acid for diclofenac degradation: Kinetics, influence factors and mechanism. , 2021, Chemosphere.
[14] Cui Lai,et al. Critical review of advanced oxidation processes in organic wastewater treatment. , 2021, Chemosphere.
[15] Zhilin Li,et al. Catalytic degradation of oxytetracycline via FeVO4 nanorods activating PMS and the insights into the performance and mechanism , 2021 .
[16] Jun Ma,et al. Enhanced diclofenac elimination in Fe(II)/peracetic acid process by promoting Fe(III)/Fe(II) cycle with ABTS as electron shuttle , 2021 .
[17] Lixi Zeng,et al. Complexes of Fe(III)-organic pollutants that directly activate Fenton-like processes under visible light , 2021 .
[18] Jun Ma,et al. Thermal Activation of Peracetic Acid in Aquatic Solution: The Mechanism and Application to Degrade Sulfamethoxazole. , 2020, Environmental science & technology.
[19] Tian-yin Huang,et al. Degradation of organic compounds by peracetic acid activated with Co3O4: A novel advanced oxidation process and organic radical contribution , 2020 .
[20] Daniel C W Tsang,et al. Singlet oxygen mediated the selective removal of oxytetracycline in C/Fe3C/Fe0 system as compared to chloramphenicol. , 2020, Environment international.
[21] Zhenran Wang,et al. Degradation of diclofenac by Fe(II)-activated peracetic acid , 2020, Environmental technology.
[22] Penghui Du,et al. Cobalt/Peracetic Acid: Advanced Oxidation of Aromatic Organic Compounds by Acetylperoxyl Radical. , 2020, Environmental science & technology.
[23] C. Feng,et al. Fe2+/HClO Reaction Produces FeIVO2+: An Enhanced Advanced Oxidation Process. , 2020, Environmental science & technology.
[24] Yongsheng Fu,et al. Degradation kinetics and mechanism of diclofenac by UV/peracetic acid , 2020, RSC advances.
[25] Hongbin Wang,et al. Effective degradation of sulfamethoxazole with Fe2+-zeolite/peracetic acid , 2020 .
[26] V. Yargeau,et al. Oxidation of tetracycline and oxytetracycline for the photo-Fenton process: Their transformation products and toxicity assessment. , 2020, Water research.
[27] Z. Pan,et al. Kinetics and mechanisms of oxytetracycline degradation in an electro-Fenton system with a modified graphite felt cathode. , 2019, Journal of environmental management.
[28] F. Bai,et al. Application of cobalt/peracetic acid to degrade sulfamethoxazole at neutral condition: Efficiency and mechanisms. , 2019, Environmental science & technology.
[29] Penghui Du,et al. Advanced Oxidation Process with Peracetic Acid and Fe(II) for Contaminant Degradation. , 2019, Environmental science & technology.
[30] Qingrui Zhang,et al. Enhancing CaO2 fenton-like process by Fe(II)-oxalic acid complexation for organic wastewater treatment. , 2019, Water research.
[31] Jie Ma,et al. Presence, dissemination and removal of antibiotic resistant bacteria and antibiotic resistance genes in urban drinking water system: A review , 2019, Frontiers of Environmental Science & Engineering.
[32] Ming-hua Zhou,et al. A critical review of the application of chelating agents to enable Fenton and Fenton-like reactions at high pH values. , 2019, Journal of hazardous materials.
[33] Y. Hu,et al. EDTA-Fe(III) Fenton-like oxidation for the degradation of malachite green. , 2018, Journal of environmental management.
[34] Yi Yang,et al. Is Sulfate Radical Really Generated from Peroxydisulfate Activated by Iron(II) for Environmental Decontamination? , 2018, Environmental science & technology.
[35] M. Louloudi,et al. Gallic acid mediated oxidation of pentachlorophenol by the Fenton reaction under mild oxidative conditions , 2018 .
[36] Shizong Wang,et al. Activation of persulfate (PS) and peroxymonosulfate (PMS) and application for the degradation of emerging contaminants , 2018 .
[37] Peizhe Sun,et al. UV/Peracetic Acid for Degradation of Pharmaceuticals and Reactive Species Evaluation. , 2017, Environmental science & technology.
[38] Pamela J. B. Brown,et al. Thermodynamic properties of an emerging chemical disinfectant, peracetic acid. , 2017, The Science of the total environment.
[39] Ki‐Hyun Kim,et al. Occurrences and removal of pharmaceuticals and personal care products (PPCPs) in drinking water and water/sewage treatment plants: A review. , 2017, The Science of the total environment.
[40] M. Trapido,et al. Degradation of naproxen by ferrous ion-activated hydrogen peroxide, persulfate and combined hydrogen peroxide/persulfate processes: The effect of citric acid addition , 2017 .
[41] Jun Hu,et al. Accelerated degradation of iopamidol in iron activated persulfate systems: Roles of complexing agents , 2017 .
[42] D. Fatta-Kassinos,et al. Significant role of UV and carbonate radical on the degradation of oxytetracycline in UV-AOPs: Kinetics and mechanism. , 2016, Water research.
[43] D. Dionysiou,et al. Kinetics and mechanism investigation on the destruction of oxytetracycline by UV-254nm activation of persulfate. , 2016, Journal of hazardous materials.
[44] D. Dionysiou,et al. Degradation kinetics and mechanism of oxytetracycline by hydroxyl radical-based advanced oxidation processes , 2016 .
[45] Peizhe Sun,et al. Transformation of Tetracycline Antibiotics and Fe(II) and Fe(III) Species Induced by Their Complexation. , 2016, Environmental science & technology.
[46] Lijie Sun,et al. Activated carbon fibers as an effective metal-free catalyst for peracetic acid activation: Implications for the removal of organic pollutants , 2015 .
[47] D. Dionysiou,et al. Photochemical degradation of oxytetracycline: Influence of pH and role of carbonate radical , 2015 .
[48] V. Vilar,et al. Process enhancement at near neutral pH of a homogeneous photo-Fenton reaction using ferricarboxylate complexes: Application to oxytetracycline degradation , 2014 .
[49] G. Mailhot,et al. Assessment of the Fe(III)-EDDS complex in Fenton-like processes: from the radical formation to the degradation of bisphenol A. , 2013, Environmental science & technology.
[50] P. Persson,et al. Complexes with aquatic organic matter suppress hydrolysis and precipitation of Fe(III) , 2012 .
[51] J. Mao,et al. Photodegradation mechanism and kinetics of methyl orange catalyzed by Fe(III) and citric acid. , 2011, Journal of hazardous materials.
[52] Ching-Ping Liang,et al. pH dependence of persulfate activation by EDTA/Fe(III) for degradation of trichloroethylene. , 2009, Journal of contaminant hydrology.
[53] W. J. Cooper,et al. Electron pulse radiolysis determination of hydroxyl radical rate constants with Suwannee River fulvic acid and other dissolved organic matter isolates. , 2007, Environmental science & technology.
[54] J. Ranville,et al. Evidence for the aquatic binding of arsenate by natural organic matter-suspended Fe(III). , 2006, Environmental science & technology.
[55] J. Haas,et al. Effects of Fe(III) chemical speciation on dissimilatory Fe(III) reduction by Shewanella putrefaciens. , 2002, Environmental science & technology.
[56] M. Hynes,et al. The kinetics and mechanisms of the reaction of iron(III) with gallic acid, gallic acid methyl ester and catechin. , 2001, Journal of inorganic biochemistry.
[57] Yuko Ito,et al. Chromatographic analysis of tetracycline antibiotics in foods. , 2000, Journal of chromatography. A.
[58] E. Kleszczewska. The spectrophotometry determination of chelate complex: L-ascorbic acid with 10d element (Cd (II),Zn (II), Hg (II)) , 1996 .
[59] K. Goto,et al. Spectrophotometric determination of iron(II) with 1,10-phenanthroline in the presence of large amounts of iron(III). , 1974, Talanta.
[60] Peizhe Sun,et al. Oxidation of tetracycline antibiotics induced by Fe(III) ions without light irradiation. , 2015, Chemosphere.
[61] P. Neta,et al. Rate Constants for Reactions of Inorganic Radicals in Aqueous Solution , 1979 .