1 |
Immobilization of arsenic as scorodite by a thermoacidophilic mixed culture via As(III)-catalyzed oxidation with activated carbon Vega-Hernandez S, Weijma J, Buisman CJN Journal of Hazardous Materials, 368, 221, 2019 |
2 |
Electrochemically induced oxidative removal of As(III) from groundwater in a dual-anode sand column Tong M, Yuan SH, Wang ZM, Luo MS, Wang YX Journal of Hazardous Materials, 305, 41, 2016 |
3 |
Effect of physico-chemical and operating conditions on the growth and activity of Acidithiobacillus ferrooxidans in a simulated heap bioleaching environment Govender E, Bryan CG, Harrison STL Minerals Engineering, 75, 14, 2015 |
4 |
Effect of Chloride on Ferrous Iron Oxidation by a Leptospirillum ferriphilum-Dominated Chemostat Culture Gahan CS, Sundkvist JE, Dopson M, Sandstrom A Biotechnology and Bioengineering, 106(3), 422, 2010 |
5 |
Effects of dissolved low molecular weight organic acids on oxidation of ferrous iron by Acidithiobacillus ferrooxidans Ren WX, Li PJ, Zheng L, Fan SX, Verhozina VA Journal of Hazardous Materials, 162(1), 17, 2009 |
6 |
Modeling of ferrous iron oxidation by a Leptospirillum ferrooxidans-dominated chemostat culture Sundkvist JE, Gahan CS, Sandstrom A Biotechnology and Bioengineering, 99(2), 378, 2008 |
7 |
Thermodynamic and kinetic characterization using process dynamics: Acidophilic ferrous iron oxidation by Leptospirillum ferrooxidans Kleerebezem R, van Loosdrecht MCM Biotechnology and Bioengineering, 100(1), 49, 2008 |
8 |
Degradation kinetics of TNT in the presence of six mineral surfaces and ferrous iron Nefso EK, Burns SE, McGrath CJ Journal of Hazardous Materials, 123(1-3), 79, 2005 |
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Comparison of different bioreactor systems for indirect H2S removal using iron-oxidizing bacteria Park D, Lee DS, Joung JY, Park JM Process Biochemistry, 40(3-4), 1461, 2005 |
10 |
High-rate iron oxidation at below pH 1 and at elevated iron and copper concentrations by a Leptospirillum ferriphilum dominated biofilm Kinnunen PHM, Puhakka JA Process Biochemistry, 40(11), 3536, 2005 |