Oliveira l c a rachel rios v r a jose fabris d garg v

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Oliveira, L. C. A, Rachel Rios, V. R. A., Jose Fabris, D., Garg, V., Karim Sapag, & Rochel Lago, M. (2002). Activated carbon/iron oxide magnetic composites for the adsorption of contaminants in water. Carbon, 40, 2177 2183. Omole, M. A., K Owino, I., & Sadik, O. A. (2009). Nanostructured materials for improving water quality: Potentials and risks. Nanotechnology Applications for Clean Water, 17 , 233 247. Orge, C. A., Ó rf ã o, J. J. M., Pereira, M. F. R., Duarte de Farias, A. M., Neto, R. C. R., & Fraga, M. A. (2011). Ozonation of model organic compounds catalysed by nanostructured cerium oxides. Applied Catalysis, B: Environmental, 103 , 190 199. Ouki, S. K., & Kavannagh, M. (1997). Performance of natural zeolites for the treatment of mixed metal-contaminated ef fl uents. Waste Management and Research, 15 , 383 394. Pala, A., & Tokat, E. (2002). Color removal from cotton textile industry wastewater in an activated sludge system with various additives. Water Research, 36 , 2920 2925. Pan á č ek, A., Kv í tek, L., Prucek, R., et al. (2006). Silver colloid nanoparticles: Synthesis, characterization, and their antibacterial activity. The Journal of Physical Chemistry B, 110 , 16248 16253. Pansini, M., Colella, C., & De Gennaro, M. (1991). Chromium removal from water by ion exchange using zeolite. Desalination, 83 , 145 157. Peng, X., Luan, Z., Ding, J., Di, Z., Li, Y., & Tian, B. (2005). Ceria nanoparticles supported on carbon nanotubes for the removal of arsenate from water. Materials Letters, 59 , 399 403. Pirkanniemi, K., & Sillanp ää , M. (2002). Heterogeneous water phase catalysis as an environmental application: A review. Chemosphere, 48 , 1047 1060. Ponder, S. M., Darab, J. G., & Mallouk, T. E. (2000). Remediation of Cr(VI) and Pb(II) aqueous solutions using supported, nanoscale zero-valent iron. Environmental Science and Technology, 34 , 2564 2569. Rai, H. S., Bhattacharyya, M. S., Singh, J., Bansal, T. K., Vats, P., & Banerjee, U. C. (2005). Removal of dyes from the ef fl uent of textile and dyestuff manufacturing industry: A review of emerging techniques with reference to biological treatment. Critical reviews in environmental science and technology, 35 , 219 238. Rao, G. P., Lu, C., & Su, F. (2007). Sorption of divalent metal ions from aqueous solution by carbon nanotubes: A review. Separation and Puri fi cation Technology, 58 , 224 231. Razzak, N. R. B. (2014). Effectiveness of fenton s reagent in the treatment of textile ef fl uent . Rickerby, D. G., & Morrison, M. (2007). Nanotechnology and the environment: A European perspective. Science and Technology of Advanced Materials, 8 , 19 24. Riu, J., Maroto, A., & Rius, F. X. (2006). Nanosensors in environmental analysis. Talanta, 69 , 288 301. Saleh, N. B., Pfefferle, L. D., & Elimelech, M. (2008). Aggregation kinetics of multiwalled carbon nanotubes in aquatic systems: Measurements and environmental implications. Environmental Science and Technology, 42 , 7963 7969. Savage, N., & Diallo, M. S. (2005). Nanomaterials and water puri fi cation: Opportunities and challenges. Journal of Nanoparticle Research, 7 , 331 342. Saxena, S., & Kaushik, S. (2011). Ef fl uent treatment in textile industries .
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