Page last updated: 2024-09-04

fenton's reagent and Electrolytes

fenton's reagent has been researched along with Electrolytes in 6 studies

Research

Studies (6)

TimeframeStudies, this research(%)All Research%
pre-19900 (0.00)18.7374
1990's0 (0.00)18.2507
2000's2 (33.33)29.6817
2010's4 (66.67)24.3611
2020's0 (0.00)2.80

Authors

AuthorsStudies
Deng, F; Garcia-Rodriguez, O; Jiang, J; Olvera-Vargas, H; Qiu, S; Yang, J; Zhu, Y1
del Campo, AG; Fernández de Dios, MÁ; Fernández, FJ; Pazos, M; Rodrigo, M; Sanromán, MÁ1
Angelidaki, I; Jin, X; Li, X; Zhang, Y; Zhao, N1
Lemley, AT; Ye, P1
El-Desoky, HS; El-Sheikh, R; Ghoneim, MM; Zidan, NM1
Ginos, A; Manios, T; Mantzavinos, D1

Other Studies

6 other study(ies) available for fenton's reagent and Electrolytes

ArticleYear
Waste-wood-derived biochar cathode and its application in electro-Fenton for sulfathiazole treatment at alkaline pH with pyrophosphate electrolyte.
    Journal of hazardous materials, 2019, 09-05, Volume: 377

    Topics: Biomass; Charcoal; Diphosphates; Electrodes; Electrolytes; Ferric Compounds; Free Radical Scavengers; Hydrogen Peroxide; Hydrogen-Ion Concentration; Hydroxyl Radical; Iron; Solutions; Sulfathiazole; Wood

2019
Bacterial-fungal interactions enhance power generation in microbial fuel cells and drive dye decolourisation by an ex situ and in situ electro-Fenton process.
    Bioresource technology, 2013, Volume: 148

    Topics: Biodegradation, Environmental; Bioelectric Energy Sources; Bioreactors; Color; Coloring Agents; Electricity; Electrolytes; Hydrogen Peroxide; Iron; Lissamine Green Dyes; Microbial Interactions; Shewanella; Trametes

2013
Novel bio-electro-Fenton technology for azo dye wastewater treatment using microbial reverse-electrodialysis electrolysis cell.
    Bioresource technology, 2017, Volume: 228

    Topics: Azo Compounds; Bacteria; Biodegradation, Environmental; Biotechnology; Coloring Agents; Dialysis; Electrodes; Electrolysis; Electrolytes; Hydrogen Peroxide; Hydrogen-Ion Concentration; Iron; Rheology; Wastewater; Water Pollutants, Chemical; Water Purification

2017
Adsorption effect on the degradation of 4,6-o-dinitrocresol and p-nitrophenol in a montmorillonite clay slurry by AFT.
    Water research, 2009, Volume: 43, Issue:5

    Topics: Adsorption; Aluminum Silicates; Bentonite; Chromatography, Liquid; Clay; Dinitrocresols; Electrodes; Electrolytes; Hydrogen Peroxide; Hydrogen-Ion Concentration; Iron; Mass Spectrometry; Nitrogen; Nitrophenols; Sewage; Temperature; Time Factors; X-Ray Diffraction

2009
Oxidation of Levafix CA reactive azo-dyes in industrial wastewater of textile dyeing by electro-generated Fenton's reagent.
    Journal of hazardous materials, 2010, Mar-15, Volume: 175, Issue:1-3

    Topics: Azo Compounds; Chromatography, High Pressure Liquid; Coloring Agents; Electrochemistry; Electrolytes; Hydrogen Peroxide; Hydrogen-Ion Concentration; Industrial Waste; Iron; Oxygen; Textile Industry; Textiles; Waste Disposal, Fluid; Water Pollutants, Chemical; Water Purification

2010
Treatment of olive mill effluents by coagulation-flocculation-hydrogen peroxide oxidation and effect on phytotoxicity.
    Journal of hazardous materials, 2006, May-20, Volume: 133, Issue:1-3

    Topics: Electrolytes; Flocculation; Food Industry; Hydrogen Peroxide; Hydrogen-Ion Concentration; Industrial Waste; Iron; Lactuca; Olea; Oxidation-Reduction; Seeds; Waste Management

2006