Characterizing the removal of Pb2+ and Zn2+ from an acidic smelting wastewater using electrocatalytic internal Fe0/C micro-electrolysis
暂无分享,去创建一个
Wenyi Zhou | Tian-guo Li | Xuan Zhu | Ming Jiang | H. Ma | Chengxue Li | Lirong Wang | Xiaojun Xu | Xiuding Shi
[1] I. Balcu,et al. Effect of Sand Co-Presence on CrVI Removal in Fe0-H2O System , 2023, Water.
[2] D. Vollprecht,et al. Application and development of zero-valent iron (ZVI) for groundwater and wastewater treatment , 2022, International Journal of Environmental Science and Technology.
[3] Jian Zhang,et al. Enhanced Reduction of Cr(VI) in Iron-Carbon Micro-Electrolysis Constructed Wetlands: Mechanisms of Iron Cycle and Microbial Interactions , 2022, Chemical Engineering Journal.
[4] T. Qiu,et al. Volatilization of Zn and Pb and preparation of integrated micro-electrolysis filter from copper slag and its application for removing Cr(VI) from aqueous solution. , 2021, Chemosphere.
[5] Jiang-Peng Fu. Lead and Zinc Smelting Wastewater Treatment and Reclamation by Coagulation-Flocculation-Sedimentation, Ultrafiltration and Reverse Osmosis Technique , 2021, Journal of Energy, Environmental & Chemical Engineering.
[6] Fanlong Kong,et al. Interactions of chlorpyrifos degradation and Cd removal in iron-carbon-based constructed wetlands for treating synthetic farmland wastewater. , 2021, Journal of environmental management.
[7] Qin Zou,et al. Simultaneous removal of Cr(VI), Cd, and Pb from aqueous solution by iron sulfide nanoparticles: Influencing factors and interactions of metals , 2020 .
[8] Hao-Ran Xu,et al. Enhancement of Fe-C micro-electrolysis in water by magnetic field: Mechanism, influential factors and application effectiveness. , 2020, Journal of hazardous materials.
[9] Huijuan Liu,et al. A promising treatment method for Cr(VI) detoxification and recovery by coupling Fe0/Fe3C/C fine powders and circulating fluidized bed , 2020 .
[10] Chao Huang,et al. Treatment of water hyacinth anaerobic fermentation wastewater by combining Fe-C micro-electrolysis with Fenton reaction , 2020 .
[11] Sajad Tamjidi,et al. A review of the application of sea material shells as low cost and effective bio-adsorbent for removal of heavy metals from wastewater , 2020, Environmental Science and Pollution Research.
[12] Shashidhar Thatikonda,et al. Enhanced electrokinetic remediation (EKR) for heavy metal‐contaminated sediments focusing on treatment of generated effluents from EKR and recovery of EDTA , 2020, Water environment research : a research publication of the Water Environment Federation.
[13] F. Cui,et al. Cr(VI) removal by micron-scale iron-carbon composite induced by ball milling: The role of activated carbon , 2020 .
[14] M. Bilal,et al. Remediation of heavy metals polluted environment using Fe-based nanoparticles: Mechanisms, influencing factors, and environmental implications. , 2020, Environmental pollution.
[15] Shoufu Yu,et al. Uranium (VI) removal from aqueous solution using iron-carbon micro-electrolysis packing , 2020 .
[16] D. Vollprecht,et al. Recovery of Molybdenum, Chromium, Tungsten, Copper, Silver, and Zinc from Industrial Waste Waters Using Zero-Valent Iron and Tailored Beneficiation Processes , 2020, Processes.
[17] Zhengyang Duan,et al. Enhanced characteristics and mechanism of Cu(II) removal from aqueous solutions in electrocatalytic internal micro-electrolysis fluidized-bed. , 2020, Chemosphere.
[18] N. Brauner,et al. Natural amino acids as potential chelators for soil remediation. , 2020, Environmental research.
[19] E. L. B. Barros Neto,et al. Anionic Surfactant Impregnation in Solid Waste for Cu 2+ Adsorption: Study of Kinetics, Equilibrium Isotherms, and Thermodynamic Parameters , 2020 .
[20] D. Vollprecht,et al. Impact of an in-situ Cr(VI)-contaminated site remediation on the groundwater , 2020, Environmental Science and Pollution Research.
[21] Young-Kwon Park,et al. Bioelectrochemical systems for a circular bioeconomy. , 2020, Bioresource technology.
[22] Feng Yan,et al. An all-in-one strategy for the adsorption of heavy metal ions and photodegradation of organic pollutants using steel slag-derived calcium silicate hydrate. , 2020, Journal of hazardous materials.
[23] Zhang Yan,et al. Recovery of Metals from Acid Mine Drainage by Bioelectrochemical System Inoculated with a Novel Exoelectrogen, Pseudomonas sp. E8 , 2019, Microorganisms.
[24] M. Hanfi,et al. Heavy metal contamination in urban surface sediments: sources, distribution, contamination control, and remediation , 2019, Environmental Monitoring and Assessment.
[25] K. S. Hui,et al. Treatment of landfill leachate using magnetically attracted zero-valent iron powder electrode in an electric field. , 2019, Journal of hazardous materials.
[26] Kilaru Harsha Vardhan,et al. A review on heavy metal pollution, toxicity and remedial measures: Current trends and future perspectives , 2019, Journal of Molecular Liquids.
[27] Elizabeth Carvajal-Flórez,et al. Technologies applicable to the removal of heavy metals from landfill leachate , 2019, Environmental Science and Pollution Research.
[28] D. Vollprecht,et al. Removal of critical metals from waste water by zero-valent iron , 2019, Journal of Cleaner Production.
[29] O. K. Abubakre,et al. Selected Heavy Metals Removal From Electroplating Wastewater by Purified and Polyhydroxylbutyrate Functionalized Carbon Nanotubes Adsorbents , 2019, Scientific Reports.
[30] 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.
[31] Chao Huang,et al. Efficient COD degradation of turpentine processing wastewater by combination of Fe-C micro-electrolysis and Fenton treatment: Long-term study and scale up , 2018, Chemical Engineering Journal.
[32] Chunyan Xu,et al. Microbial nitrate removal in biologically enhanced treated coal gasification wastewater of low COD to nitrate ratio by coupling biological denitrification with iron and carbon micro-electrolysis. , 2018, Bioresource technology.
[33] Zhengyang Duan,et al. Optimization and assessment of Fe-electrocoagulation for the removal of potentially toxic metals from real smelting wastewater. , 2018, Journal of environmental management.
[34] Tianxiang Lan,et al. Pretreatment of printing and dyeing wastewater by Fe/C micro-electrolysis combined with H2O2 process. , 2018, Water science and technology : a journal of the International Association on Water Pollution Research.
[35] Fu Chen,et al. Advanced treatment of copper smelting wastewater by the combination of internal micro-electrolysis and electrocoagulation , 2018 .
[36] Y. Liu,et al. Investigating the influences of electrode material property on degradation behavior of organic wastewaters by iron-carbon micro-electrolysis , 2018 .
[37] G. Qu,et al. Treatment of coking wastewater by a novel electric assisted micro-electrolysis filter. , 2017, Journal of environmental sciences.
[38] Xiongying,et al. Treatment Performance and Degradation Process of Contaminants in Vitamin B12 Wastewater , 2017 .
[39] Zhenchao Zhang. Treatment of oilfield wastewater by combined process of micro-electrolysis, Fenton oxidation and coagulation. , 2017, Water science and technology : a journal of the International Association on Water Pollution Research.
[40] G. Cao,et al. Simultaneous removal of Zn2+ and Mn2+ ions from synthetic and real smelting wastewater using electrocoagulation process: Influence of pulse current parameters and anions , 2017 .
[41] S. De,et al. A novel ultrafiltration grade nickel iron oxide doped hollow fiber mixed matrix membrane: Spinning, characterization and application in heavy metal removal , 2017 .
[42] U. Tezcan Un,et al. The treatment of chromium containing wastewater using electrocoagulation and the production of ceramic pigments from the resulting sludge. , 2017, Journal of environmental management.
[43] H. Hamad,et al. Comparative performance of anodic oxidation and electrocoagulation as clean processes for electrocatalytic degradation of diazo dye Acid Brown 14 in aqueous medium. , 2017, Journal of hazardous materials.
[44] Zhipeng Liu,et al. Enhanced decolorization of methyl orange in aqueous solution using iron-carbon micro-electrolysis activation of sodium persulfate. , 2017, Chemosphere.
[45] Xia Yang,et al. Electrocoagulation treatment of arsenic in wastewaters: A comprehensive review , 2017 .
[46] Qunsheng Li,et al. Degradation of organic pollutants in near-neutral pH solution by Fe-C micro-electrolysis system , 2017 .
[47] D. Dionysiou,et al. Adsorption, oxidation, and reduction behavior of arsenic in the removal of aqueous As(III) by mesoporous Fe/Al bimetallic particles. , 2016, Water research.
[48] M. A. Baghchesara,et al. XPS studies and photocurrent applications of alkali-metals-doped ZnO nanoparticles under visible illumination conditions , 2016 .
[49] Hui Zhang,et al. A Study on the Preparation of Regular Multiple Micro-Electrolysis Filler and the Application in Pretreatment of Oil Refinery Wastewater , 2016, International journal of environmental research and public health.
[50] C. Noubactep. Designing Metallic Iron Packed‐Beds for Water Treatment: A Critical Review , 2016 .
[51] K. He,et al. Cadmium exposure and risk of lung cancer: a meta-analysis of cohort and case–control studies among general and occupational populations , 2016, Journal of Exposure Science and Environmental Epidemiology.
[52] S. Zharkov,et al. Ultrafine particles derived from mineral processing: A case study of the Pb-Zn sulfide ore with emphasis on lead-bearing colloids. , 2016, Chemosphere.
[53] W. Jin,et al. Electrochemical processes for the environmental remediation of toxic Cr(VI): A review , 2016 .
[54] Yongyou Hu,et al. Decomplexation efficiency and mechanism of Cu(II)–EDTA by H2O2 coupled internal micro-electrolysis process , 2016, Environmental Science and Pollution Research.
[55] S. Carvalho,et al. Chemical and structural characterization of ZrCNAg coatings: XPS, XRD and Raman spectroscopy , 2015 .
[56] M. Pasquali,et al. Electrochemical growth of nickel nanoparticles on carbon nanotubes fibers: Kinetic modeling and implications for an easy to handle platform for gas sensing device , 2015 .
[57] Qi Zhang. Treatment of oilfield produced water using Fe/C micro-electrolysis assisted by zero-valent copper and zero-valent aluminium , 2015, Environmental technology.
[58] J. Chen,et al. Introduction and demonstration of a novel Pb(II)-imprinted polymeric membrane with high selectivity and reusability for treatment of lead contaminated water. , 2015, Journal of colloid and interface science.
[59] B. Gao,et al. Application for acrylonitrile wastewater treatment by new micro-electrolysis ceramic fillers , 2014 .
[60] M. Sillanpää,et al. Removal of humic substances by electrocoagulation (EC) process and characterization of floc size growth mechanism under optimum conditions , 2014 .
[61] Qi Liu,et al. Selective depression of sphalerite by chitosan in differential PbZn flotation , 2013 .
[62] Xiaosheng Tang,et al. Degradation of p-nitrophenol by interior microelectrolysis of zero-valent iron/copper-coated magnetic carbon galvanic couples in the intermittent magnetic field , 2012 .
[63] J. Jia,et al. Treatment of mature landfill leachate by internal micro-electrolysis integrated with coagulation: a comparative study on a novel sequencing batch reactor based on zero valent iron. , 2012, Journal of hazardous materials.
[64] Xiuwen Wu,et al. Treatment of wastewater containing EDTA-Cu(II) using the combined process of interior microelectrolysis and Fenton oxidation–coagulation , 2012 .
[65] Tian Rui. Treatment of zinc and lead smelting wastewater containing heavy metals by combined process of micro-electrolysis with flocculation , 2012 .
[66] D. Lestan,et al. Using electrocoagulation for metal and chelant separation from washing solution after EDTA leaching of Pb, Zn and Cd contaminated soil. , 2010, Journal of hazardous materials.
[67] Dongye Zhao,et al. Manipulating the Size and Dispersibility of Zerovalent Iron Nanoparticles by Use of Carboxymethyl Cellulose Stabilizers , 2007 .