Utilization of formic acid in nanoscale zero valent iron-catalyzed Fenton system for carbon tetrachloride degradation
暂无分享,去创建一个
[1] X. Zhang,et al. Enhanced redox degradation of chlorinated hydrocarbons by the Fe(II)-catalyzed calcium peroxide system in the presence of formic acid and citric acid. , 2019, Journal of hazardous materials.
[2] Haizhou Liu,et al. Nitrate Removal via a Formate Radical-Induced Photochemical Process. , 2018, Environmental science & technology.
[3] Z. Qiu,et al. Enhanced degradation of trichloroethylene in oxidative environment by nZVI/PDA functionalized rGO catalyst. , 2018, Journal of hazardous materials.
[4] X. Zhang,et al. Comparative studies of H2O2/Fe(II)/formic acid, sodium percarbonate/Fe(II)/formic acid and calcium peroxide/Fe(II)/formic acid processes for degradation performance of carbon tetrachloride , 2018, Chemical Engineering Journal.
[5] Jinxin,et al. Dechlorination of Carbon Tetrachloride by Sulfide-Modified Nanoscale Zerovalent Iron , 2018, Environmental Engineering Science.
[6] Jie Yang,et al. EDDS enhanced Shewanella putrefaciens CN32 and α-FeOOH reductive dechlorination of carbon tetrachloride. , 2018, Chemosphere.
[7] Yuxiang Chen,et al. Feasibility of using nanoscale zero-valent iron and persulfate to degrade sulfamethazine in aqueous solutions , 2018 .
[8] Daniel C W Tsang,et al. Aging effects on chemical transformation and metal(loid) removal by entrapped nanoscale zero-valent iron for hydraulic fracturing wastewater treatment. , 2018, The Science of the total environment.
[9] X. Zhang,et al. Enhanced reductive degradation of carbon tetrachloride by carbon dioxide radical anion-based sodium percarbonate/Fe(II)/formic acid system in aqueous solution , 2018, Frontiers of Environmental Science & Engineering.
[10] R. Boukherroub,et al. Facile synthesis of fluorinated polydopamine/chitosan/reduced graphene oxide composite aerogel for efficient oil/water separation , 2017 .
[11] K. K. Hii,et al. A colorimetric method for rapid and selective quantification of peroxodisulfate, peroxomonosulfate and hydrogen peroxide , 2017 .
[12] Yiyang Ma,et al. Reduction of carbon tetrachloride by nanoscale palladized zero-valent iron@ graphene composites: Kinetics, activation energy, effects of reaction conditions and degradation mechanism , 2017 .
[13] G. Zeng,et al. Degradation of trichloroethene by nanoscale zero-valent iron (nZVI) and nZVI activated persulfate in the absence and presence of EDTA , 2017 .
[14] Zhimin Hou,et al. Highly reductive radical CO2− deriving from a system with SO4− and formate anion: Implication for reduction of Cr(VI) from wastewater , 2017 .
[15] Xuhong Guo,et al. Carbon dioxide radical anion-based UV/S2O82−/HCOOH reductive process for carbon tetrachloride degradation in aqueous solution , 2017 .
[16] T. Waite,et al. The tortoise versus the hare - Possible advantages of microparticulate zerovalent iron (mZVI) over nanoparticulate zerovalent iron (nZVI) in aerobic degradation of contaminants. , 2016, Water research.
[17] Y. Kawase,et al. Hydroxyl radical generation linked with iron dissolution and dissolved oxygen consumption in zero-valent iron wastewater treatment process , 2016 .
[18] Tuqiao Zhang,et al. Trichloroacetic acid reduction by an advanced reduction process based on carboxyl anion radical , 2016 .
[19] Zuliang Chen,et al. Effect of humic acid, oxalate and phosphate on Fenton-like oxidation of microcystin-LR by nanoscale zero-valent iron , 2016 .
[20] M. Brusseau,et al. Enhanced degradation of trichloroethene by calcium peroxide activated with Fe(III) in the presence of citric acid , 2016, Frontiers of Environmental Science & Engineering.
[21] T. Waite,et al. Effect of Structural Transformation of Nanoparticulate Zero-Valent Iron on Generation of Reactive Oxygen Species. , 2016, Environmental science & technology.
[22] Juan Lv,et al. Removal of chlorpheniramine in a nanoscale zero-valent iron induced heterogeneous Fenton system: Influencing factors and degradation intermediates , 2016 .
[23] Y. Kawase,et al. Hydroxyl radical generation in the photo-Fenton process: Effects of carboxylic acids on iron redox cycling , 2015 .
[24] R. Zeng,et al. Zero-valent iron nanoparticles with sustained high reductive activity for carbon tetrachloride dechlorination , 2015 .
[25] Jianji Wang,et al. Degradation pathway and kinetics of 1-alkyl-3-methylimidazolium bromides oxidation in an ultrasonic nanoscale zero-valent iron/hydrogen peroxide system. , 2015, Journal of hazardous materials.
[26] R. Naidu,et al. Nanoscale zero-valent iron as a catalyst for heterogeneous Fenton oxidation of amoxicillin , 2014 .
[27] B. Bhanvase,et al. In situ sonochemical synthesis of Fe3O4–graphene nanocomposite for lithium rechargeable batteries , 2014 .
[28] Woojin Lee,et al. Influence of riboflavin on nanoscale zero-valent iron reactivity during the degradation of carbon tetrachloride. , 2014, Environmental science & technology.
[29] N. Koprivanac,et al. Sono-Fenton oxidation of formic acid/formate ions in an aqueous solution: From an experimental design to the mechanistic modeling , 2010 .
[30] T. Waite,et al. Process optimization in use of zero valent iron nanoparticles for oxidative transformations. , 2010, Chemosphere.
[31] Janina A. Rosso,et al. Thermally activated peroxydisulfate in the presence of additives: a clean method for the degradation of pollutants. , 2009, Chemosphere.
[32] M. Oturan,et al. Reaction sequence for the mineralization of the short-chain carboxylic acids usually formed upon cleavage of aromatics during electrochemical Fenton treatment , 2008 .
[33] W. Chu,et al. The role of organic ligands in ferrous-induced photochemical degradation of 2,4-dichlorophenoxyacetic acid. , 2007, Chemosphere.
[34] M. Wörner,et al. Trichloroacetic acid dehalogenation by reductive radicals , 2007 .
[35] E. Carraway,et al. Reduction of chlorinated ethanes by nanosized zero-valent iron: kinetics, pathways, and effects of reaction conditions. , 2005, Environmental science & technology.
[36] T. Tachikawa,et al. Direct observation of the one-electron reduction of methyl viologen mediated by the CO2 radical anion during TiO2 photocatalytic reactions. , 2004, Langmuir : the ACS journal of surfaces and colloids.
[37] J. Barker,et al. Hydrogen Peroxide Photolysis in Acidic Aqueous Solutions Containing Chloride Ions. I. Chemical Mechanism , 2003 .
[38] R. Watts,et al. Degradation of carbon tetrachloride by modified Fenton's reagent. , 2002, Journal of hazardous materials.
[39] O. Alfano,et al. Decomposition of Formic Acid in a Water Solution Employing the Photo-Fenton Reaction , 2002 .
[40] Laura L. Perissinotti,et al. Yield of Carboxyl Anion Radicals in the Photocatalytic Degradation of Formate over TiO2 Particles , 2001 .
[41] A. Braun,et al. Reactions of carbon dioxide radical anion with substituted benzenes , 2001 .
[42] P. Neta,et al. Rate Constants for Reactions of Inorganic Radicals in Aqueous Solution , 1979 .
[43] K. Goto,et al. Spectrophotometric determination of iron(II) with 1,10-phenanthroline in the presence of large amounts of iron(III). , 1974, Talanta.