Browse > Article
http://dx.doi.org/10.4491/KSEE.2011.33.3.157

The Pathway and Characteristics for Decomposition of Fenitrothion by Zerovalent Iron (ZVI)  

Lee, Dong-Yoon (Department of Environmental Engineering, Changwon National University)
Moon, Byung-Hyun (Department of Environmental Engineering, Changwon National University)
Publication Information
Abstract
This study investigated decomposition the pathway and characteristics of fenitrothion, which is applied on the golf course for pesticide, by ZVI in batch reactor. The removal efficiencies of the pure fenitrothion and the commercial fenitrothion in Smithion by ZVI were compared. The fenitrothion was converted to 3-Methyl-4-nitrophenol and 4-Amino-m-cresol by ZVI. The fenitrothion decomposition rate by ZVI could be expressed by the first order reaction. As increasing the ZVI dosages, the first order rate constants and removal efficiencies increased. The surface area normalized rate constants for the pure fenitrothion and the commercial fenitrothion were 0.0398 and 0.1312 ($L/m^2{\cdot}hr$), respectively. The decomposition of the commercial fenitrothion in Smithion was faster than that of the pure fenitrothion by ZVI, the surfactant in Smithion lead to enhances solubility of fenitrothion and disperse ZVI.
Keywords
Fenitrothion; Zero-valent Iron; Decomposition; Pesticide; Smithion;
Citations & Related Records
Times Cited By KSCI : 5  (Citation Analysis)
연도 인용수 순위
1 Munch, D. J., Graves R. L., Maxey R. A. and Engel, M. T. M., "Methods Development and Implementation for the National Presticide Survey," Environ. Sci, Technol., 24, 1445-1451(1990).
2 이용두, 김학모, 송희경, "활성탄 종류에 따른 골프장 사용 농약의 흡착 특성," 제주대 해양과 환경연구논문집, 29(2), 47-59(2005).
3 감상규, 허철구, "천연 제올라이트에 의한 Phosphamidon 및 Fenitrothion의 흡착 특성," 제주대 해양과 환경연구논문집, 26, 89-97(2002).
4 Derbalah, A. S., Nakatani, N. and Sakugawa, H., "Photocatalytic removal of fenitrothion in pure and natural waters by photo-Fenton reaction," Chemosphere, 57(7), 635-644 (2004).   DOI   ScienceOn
5 Rahman, M. M., Park, J. W., Park, M., Rhee, I. K. and Kim, J. E., "Abiotic Degradation of the Herbicide Oxadiazon in Water," Agric. Chem. Biotechnol., 49(4), 157-161(2006).
6 Kim, H. Y., Kim, I. K., Han, T. H., Shim, J. H. and Kim, I. S., "Degradation of the Herbicide Butachlor by Laboratory- synthesized Nanoscale Fe0 in Batch Experiments," Agic. Chem. Biotechnol., 49(3), 101-105(2006).
7 Ghauch, A., "Degradation of benomyl, picloram, and dicamba in a conical apparatus by zero-valent iron powder," Chemosphere, 43(8), 1109-1117(2001).   DOI   ScienceOn
8 Keum, Y. S. and Li, Q. X., "Reduction of nitroaromatic pesticides with zero-valent iron," Chemosphere, 54(3), 255-263 (2004).   DOI   ScienceOn
9 김대현, 최충렬, 김태화, 박만, 김장억, "기능화된 Zerovalent Iron에 의한 유기인계 살충제 Chlorpyrifos의 분해 특성," 한국응용생명화학회지, 50(4), 321-326(2007).
10 김수정, 양재의, 오상은, "Zerovalent lron에 의한 Metolachlor의 분해 Kinetics," 한국환경농학회지, 26(1), 55-61(2007).
11 Loraine, G. A., "Effects of alcohols, anionic and nonionic surfactants on the reduction of pce and tce by zero-valent iron," Water Res., 35(6), 1453-1460(2001).   DOI   ScienceOn
12 Shin, M. C. et al., "Effects of surfactant on reductive dechlorination of trichloroethylene by zero-valent iron," Desalination, 223, 299-307(2008).   DOI   ScienceOn
13 Chatterjee, S., Lim, S. R. and Woo, S. H., "Removal of Reactive Black 5 by zero-valent iron modified with various surfactants," Chem. Eng. J., 160, 27-32(2010).   DOI   ScienceOn
14 Yoo, J. W., Kim, D. H., Moon, B. H. and Ahn, C. J., "Studies on Effective Degradation of the Insecticide Fenitrothion," J. Kor. Chem. Soc., 53(2), 218(2009).   DOI   ScienceOn