Weak magnetic field enables high selectivity of zerovalent iron toward metalloid oxyanions under aerobic conditions.
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[1] Hao Ming Chen,et al. Mediating the reactivity and selectivity of nanoscale zerovalent iron toward nitrobenzene under porous carbon confinement , 2020 .
[2] Lizhi Zhang,et al. Phosphate modification enables high efficiency and electron selectivity of nZVI toward Cr(VI) removal , 2020 .
[3] Junlian Qiao,et al. Selenate removal by Fe0 coupled with ferrous iron, hydrogen peroxide, sulfidation, and weak magnetic field: A comparative study. , 2019, Water research.
[4] Yuankui Sun,et al. Characterization methods of zerovalent iron for water treatment and remediation. , 2019, Water research.
[5] Junlian Qiao,et al. Effect of solution chemistry on the reactivity and electron selectivity of zerovalent iron toward Se(VI) removal , 2018, Chemical Engineering Journal.
[6] B. Xi,et al. Dechlorination of Excess Trichloroethene by Bimetallic and Sulfidated Nanoscale Zero-Valent Iron. , 2018, Environmental science & technology.
[7] Paul G Tratnyek,et al. Dynamic interactions between sulfidated zerovalent iron and dissolved oxygen: Mechanistic insights for enhanced chromate removal. , 2018, Water Research.
[8] B. Pan,et al. Enhanced Reactivity and Electron Selectivity of Sulfidated Zerovalent Iron toward Chromate under Aerobic Conditions. , 2018, Environmental science & technology.
[9] Yupu Liu,et al. Selective Nitrate Reduction to Dinitrogen by Electrocatalysis on Nanoscale Iron Encapsulated in Mesoporous Carbon. , 2018, Environmental science & technology.
[10] B. Pan,et al. Advances in Sulfidation of Zerovalent Iron for Water Decontamination. , 2017, Environmental science & technology.
[11] Paul G Tratnyek,et al. Sulfidation of Iron-Based Materials: A Review of Processes and Implications for Water Treatment and Remediation. , 2017, Environmental science & technology.
[12] Paul G Tratnyek,et al. Mechanochemically Sulfidated Microscale Zero Valent Iron: Pathways, Kinetics, Mechanism, and Efficiency of Trichloroethylene Dechlorination. , 2017, Environmental science & technology.
[13] O. Kolditz,et al. Individual and combined effects of humic acid, bicarbonate and calcium on TCE removal kinetics, aging behavior and electron efficiency of mZVI particles , 2017 .
[14] B. Pan,et al. Efficient Removal of Trace Se(VI) by Millimeter-Sized Nanocomposite of Zerovalent Iron Confined in Polymeric Anion Exchanger , 2017 .
[15] B. Pan,et al. Coupled Effect of Ferrous Ion and Oxygen on the Electron Selectivity of Zerovalent Iron for Selenate Sequestration. , 2017, Environmental science & technology.
[16] Wei-xian Zhang,et al. Enhanced Cr(VI) removal by zero-valent iron coupled with weak magnetic field: Role of magnetic gradient force , 2017 .
[17] Tinglin Huang,et al. Combined Effect of Weak Magnetic Fields and Anions on Arsenite Sequestration by Zerovalent Iron: Kinetics and Mechanisms. , 2017, Environmental science & technology.
[18] Weile Yan,et al. Reductive Dechlorination of Trichloroethene by Zero-valent Iron Nanoparticles: Reactivity Enhancement through Sulfidation Treatment. , 2016, Environmental science & technology.
[19] Paul G Tratnyek,et al. Effects of Sulfidation, Magnetization, and Oxygenation on Azo Dye Reduction by Zerovalent Iron. , 2016, Environmental science & technology.
[20] Paul G Tratnyek,et al. Selectivity of Nano Zerovalent Iron in In Situ Chemical Reduction: Challenges and Improvements , 2016 .
[21] Paul G Tratnyek,et al. Sulfidation of Nano Zerovalent Iron (nZVI) for Improved Selectivity During In-Situ Chemical Reduction (ISCR). , 2016, Environmental science & technology.
[22] Paul G Tratnyek,et al. Sequestration of Antimonite by Zerovalent Iron: Using Weak Magnetic Field Effects to Enhance Performance and Characterize Reaction Mechanisms. , 2016, Environmental science & technology.
[23] T. Reichenauer,et al. Electron efficiency of nZVI does not change with variation of environmental parameters. , 2015, The Science of the total environment.
[24] S. Ghoshal,et al. Enhanced reductive dechlorination of trichloroethylene by sulfidated nanoscale zerovalent iron. , 2015, Water research.
[25] I. Lo,et al. The limitations of applying zero-valent iron technology in contaminants sequestration and the corresponding countermeasures: the development in zero-valent iron technology in the last two decades (1994-2014). , 2015, Water research.
[26] Xuefei Zhou,et al. Simultaneous removal of cadmium and nitrate in aqueous media by nanoscale zerovalent iron (nZVI) and Au doped nZVI particles. , 2014, Water research.
[27] Dan Fu,et al. Nitrobenzene degradation by micro-sized iron and electron efficiency evaluation , 2014, Chemical Papers.
[28] Xiaoguang Meng,et al. Effect of weak magnetic field on arsenate and arsenite removal from water by zerovalent iron: an XAFS investigation. , 2014, Environmental science & technology.
[29] Wenjun Yang,et al. Kinetics and mechanisms of pH-dependent selenite removal by zero valent iron. , 2013, Water research.
[30] M. Berg,et al. Groundwater Arsenic Contamination Throughout China , 2013, Science.
[31] Hong Liu,et al. Electron efficiency of zero-valent iron for groundwater remediation and wastewater treatment , 2013 .
[32] Fengchang Wu,et al. Antimony pollution in China. , 2012, The Science of the total environment.
[33] K. Scrivener,et al. Physical and microstructural aspects of iron sulfide degradation in concrete , 2011 .
[34] C. Noubactep,et al. Metallic iron for environmental remediation: learning from electrocoagulation. , 2010, Journal of hazardous materials.
[35] C. Noubactep. A CRITICAL REVIEW ON THE PROCESS OF CONTAMINANT REMOVAL IN FE0–H2O SYSTEMS , 2008, Environmental technology.
[36] Tanapon Phenrat,et al. Effect of TCE concentration and dissolved groundwater solutes on NZVI-promoted TCE dechlorination and H2 evolution. , 2007, Environmental science & technology.
[37] M Newville,et al. ATHENA, ARTEMIS, HEPHAESTUS: data analysis for X-ray absorption spectroscopy using IFEFFIT. , 2005, Journal of synchrotron radiation.
[38] D. Sholl,et al. TCE dechlorination rates, pathways, and efficiency of nanoscale iron particles with different properties. , 2005, Environmental science & technology.
[39] I. Willner,et al. Magnetic Field Effects on Electrochemical Processes: A Theoretical Hydrodynamic Model , 2004 .
[40] J. Rimstidt,et al. Pyrite oxidation in moist air , 2004 .
[41] Paul G Tratnyek,et al. Mass transport effects on the kinetics of nitrobenzene reduction by iron metal. , 2001, Environmental science & technology.
[42] Paul G Tratnyek,et al. The Role of Oxides in Reduction Reactions at the Metal-Water Interface , 1998 .
[43] Abinash Agrawal,et al. Reduction of Nitro Aromatic Compounds by Zero-Valent Iron Metal , 1996 .
[44] Paul G Tratnyek,et al. Reductive dehalogenation of chlorinated methanes by iron metal. , 1994, Environmental science & technology.