메뉴 건너뛰기




Volumn 192, Issue 1-4, 2008, Pages 349-359

Remediation of atrazine-contaminated soil and water by nano zerovalent iron

Author keywords

Atrazine; Nano zerovalent iron; Pd; Remediation; Zerovalent iron

Indexed keywords

ALUMINUM; ENVIRONMENTAL ENGINEERING; HERBICIDES; IRON; MICROFLUIDICS; PALLADIUM; PH; PH EFFECTS; REMEDIATION; SOIL POLLUTION; SOILS; SOLUTIONS; SULFATE MINERALS;

EID: 45849092924     PISSN: 00496979     EISSN: 15732932     Source Type: Journal    
DOI: 10.1007/s11270-008-9661-8     Document Type: Article
Times cited : (123)

References (55)
  • 1
    • 0030052247 scopus 로고    scopus 로고
    • Reduction of nitro aromatic compounds by zero-valent iron metal
    • Agrawal, A., & Tratnyek, P. G. (1996). Reduction of nitro aromatic compounds by zero-valent iron metal. Environmental Science and Technology, 30, 153-160.
    • (1996) Environmental Science and Technology , vol.30 , pp. 153-160
    • Agrawal, A.1    Tratnyek, P.G.2
  • 2
    • 0036469556 scopus 로고    scopus 로고
    • Kinetics of nitrate, nitrite and Cr(VI) reduction by iron metal
    • Alowitz, M. J., & Scherer, M. M. (2002). Kinetics of nitrate, nitrite and Cr(VI) reduction by iron metal. Environmental Science and Technology, 36, 299-306.
    • (2002) Environmental Science and Technology , vol.36 , pp. 299-306
    • Alowitz, M.J.1    Scherer, M.M.2
  • 4
  • 5
    • 0031443113 scopus 로고    scopus 로고
    • In situ remediation of Cr (Vr)-contaminated groundwater using permeable reactive walls: Laboratory studies
    • Blowes, D. W., Ptacek, C. J., & Jambor, J. L. (1997). In situ remediation of Cr (Vr)-contaminated groundwater using permeable reactive walls: Laboratory studies. Environmental Science and Technology, 31, 3348-3357.
    • (1997) Environmental Science and Technology , vol.31 , pp. 3348-3357
    • Blowes, D.W.1    Ptacek, C.J.2    Jambor, J.L.3
  • 6
    • 34248170703 scopus 로고    scopus 로고
    • Comparison of reductive dechlorination of p-chlorophenol using Fe0 and nanozized Fe0
    • Cheng, R., Wang, J.-L., & Zhang, W.-X. (2007a). Comparison of reductive dechlorination of p-chlorophenol using Fe0 and nanozized Fe0. Journal of Hazardous Materials, 144, 334-339.
    • (2007) Journal of Hazardous Materials , vol.144 , pp. 334-339
    • Cheng, R.1    Wang, J.-L.2    Zhang, W.-X.3
  • 7
    • 37049027936 scopus 로고    scopus 로고
    • Reductive dechlorination of p-chlorophenol by nanoscale iron
    • Cheng, R., Wang, J.-L., & Zhang, W.-X. (2007b). Reductive dechlorination of p-chlorophenol by nanoscale iron. Biomedical Environmental Science, 20, 410-413.
    • (2007) Biomedical Environmental Science , vol.20 , pp. 410-413
    • Cheng, R.1    Wang, J.-L.2    Zhang, W.-X.3
  • 8
    • 0032813575 scopus 로고    scopus 로고
    • Abiotic persistence of atrazine and simazine in water
    • Comber, S. D. W. (1999). Abiotic persistence of atrazine and simazine in water. Pesticide Science, 55, 696-702.
    • (1999) Pesticide Science , vol.55 , pp. 696-702
    • Comber, S.D.W.1
  • 9
    • 0034833341 scopus 로고    scopus 로고
    • Field scale remediation of a metolachlor-contaminated spill site using zerovalent iron
    • Comfort, S. D., Shea, P. J., Machacek, T. A., Gaber, H., & Oh, B. T. (2001). Field scale remediation of a metolachlor-contaminated spill site using zerovalent iron. Journal of Environmental Quality, 30, 1636-1643.
    • (2001) Journal of Environmental Quality , vol.30 , pp. 1636-1643
    • Comfort, S.D.1    Shea, P.J.2    MacHacek, T.A.3    Gaber, H.4    Oh, B.T.5
  • 10
    • 0002352103 scopus 로고    scopus 로고
    • Rapid reductive dechlorination of atrazine by zero-valent iron under acidic conditions
    • Dombek, T., Dolan, F., Schultz, J., & Klarup, D. (2001). Rapid reductive dechlorination of atrazine by zero-valent iron under acidic conditions. Environmental Pollution, 111, 21-27.
    • (2001) Environmental Pollution , vol.111 , pp. 21-27
    • Dombek, T.1    Dolan, F.2    Schultz, J.3    Klarup, D.4
  • 11
    • 33744519805 scopus 로고    scopus 로고
    • Effect of metal ions and humic acid on the dechlorination of tetrachloroethylene by zerovalent iron
    • Doong, R.-A., & Lai, Y.-A. (2006). Effect of metal ions and humic acid on the dechlorination of tetrachloroethylene by zerovalent iron. Chemosphere, 64, 371-378.
    • (2006) Chemosphere , vol.64 , pp. 371-378
    • Doong, R.-A.1    Lai, Y.-A.2
  • 12
    • 0032524779 scopus 로고    scopus 로고
    • Dechlorination of the chloroacetanilide herbicide alachlor and metolachlor by iron metal
    • Eykholt, G. R., & Davenport, D. T. (1998). Dechlorination of the chloroacetanilide herbicide alachlor and metolachlor by iron metal. Environmental Science and Technology, 32, 1481-1487.
    • (1998) Environmental Science and Technology , vol.32 , pp. 1481-1487
    • Eykholt, G.R.1    Davenport, D.T.2
  • 13
    • 0034131747 scopus 로고    scopus 로고
    • Investigation of the long-term performance of zero-valent iron for reductive dechlorination of trichloroethylene
    • Farrell, J., Kason, M., Melitas, N., & Li, T. (2002). Investigation of the long-term performance of zero-valent iron for reductive dechlorination of trichloroethylene. Environmental Science and Technology, 34, 514-521.
    • (2002) Environmental Science and Technology , vol.34 , pp. 514-521
    • Farrell, J.1    Kason, M.2    Melitas, N.3    Li, T.4
  • 14
    • 0032524164 scopus 로고    scopus 로고
    • Understanding the mechanism of uranium removal from groundwater by zero-valent iron using X-ray photoelectron spectroscopy
    • Fiedor, J. N., Bostick, W. D., Jarabek, R. J., & Farrel, J. (1998). Understanding the mechanism of uranium removal from groundwater by zero-valent iron using X-ray photoelectron spectroscopy. Environmental Science and Technology, 32, 1466-1473.
    • (1998) Environmental Science and Technology , vol.32 , pp. 1466-1473
    • Fiedor, J.N.1    Bostick, W.D.2    Jarabek, R.J.3    Farrel, J.4
  • 15
    • 0033811536 scopus 로고    scopus 로고
    • Remediation of s-triazines contaminated water in laboratory scale apparatus using zerovalent iron powder
    • Ghauch, A., & Suptil, J. (2000). Remediation of s-triazines contaminated water in laboratory scale apparatus using zerovalent iron powder. Chemosphere, 41, 1835-1843.
    • (2000) Chemosphere , vol.41 , pp. 1835-1843
    • Ghauch, A.1    Suptil, J.2
  • 16
    • 0028535136 scopus 로고
    • Enhanced degradatinon of halogenated aliphatics by zero-valent iron
    • Gillham, R. W., & O'Hannesin, S. F. (1994). Enhanced degradatinon of halogenated aliphatics by zero-valent iron. Ground Water, 32, 958-967.
    • (1994) Ground Water , vol.32 , pp. 958-967
    • Gillham, R.W.1    O'Hannesin, S.F.2
  • 18
    • 0042208360 scopus 로고    scopus 로고
    • Effects of oxide coating and selected cations on nitrate reduction by iron metal
    • Huang, Y. H., Zhang, T. C., Shea, P. J., & Comfort, S. D. (2003). Effects of oxide coating and selected cations on nitrate reduction by iron metal. Journal of Environmental Quality, 32, 1306-1315.
    • (2003) Journal of Environmental Quality , vol.32 , pp. 1306-1315
    • Huang, Y.H.1    Zhang, T.C.2    Shea, P.J.3    Comfort, S.D.4
  • 20
    • 36049011261 scopus 로고    scopus 로고
    • Destruction of lindane and atrazine using stabilized iron nanoparticles under aerobic and anaerobic conditions: Effects of catalyst and stabilizer
    • Joo, S. H., & Zhao, D. (2008). Destruction of lindane and atrazine using stabilized iron nanoparticles under aerobic and anaerobic conditions: effects of catalyst and stabilizer. Chemosphere, 70, 418-425.
    • (2008) Chemosphere , vol.70 , pp. 418-425
    • Joo, S.H.1    Zhao, D.2
  • 24
    • 33748408904 scopus 로고
    • Standard solution for redox potential measurement
    • Light, T. S. (1972). Standard solution for redox potential measurement. Analytical Chemistry, 44, 1038-1039.
    • (1972) Analytical Chemistry , vol.44 , pp. 1038-1039
    • Light, T.S.1
  • 25
    • 28344450863 scopus 로고    scopus 로고
    • Chemical reduction of an unbuffered nitrate solution using catalyzed and uncatalyzed nanoscale iron particles
    • Liou, Y. H., Lo, S.-L., Lin, C.-J., Kuan, W.-H., & Weng, S. C. (2005). Chemical reduction of an unbuffered nitrate solution using catalyzed and uncatalyzed nanoscale iron particles. Journal of Hazardous Materials, 127, 102-110.
    • (2005) Journal of Hazardous Materials , vol.127 , pp. 102-110
    • Liou, Y.H.1    Lo, S.-L.2    Lin, C.-J.3    Kuan, W.-H.4    Weng, S.C.5
  • 26
    • 14744306930 scopus 로고    scopus 로고
    • TCE dechlorination rates, pathways, and efficiency of nanoscale iron particles with different properties
    • Liu, Y., Majetich, S. A., Tilton, R. D., Sholl, D. S., & Lowry, G. V. (2005). TCE dechlorination rates, pathways, and efficiency of nanoscale iron particles with different properties. Environmental Science and Technology, 39, 1338-1345.
    • (2005) Environmental Science and Technology , vol.39 , pp. 1338-1345
    • Liu, Y.1    Majetich, S.A.2    Tilton, R.D.3    Sholl, D.S.4    Lowry, G.V.5
  • 30
    • 0028991174 scopus 로고
    • A method for the rapid dechlorination of low molecular weight chlorinated hydrocarbons in water
    • Muftikian, R., Fernando, Q., & Korte, N. (1995). A method for the rapid dechlorination of low molecular weight chlorinated hydrocarbons in water. Water Research, 29, 2434-2439.
    • (1995) Water Research , vol.29 , pp. 2434-2439
    • Muftikian, R.1    Fernando, Q.2    Korte, N.3
  • 31
    • 0000481203 scopus 로고
    • Total carbon, organic carbon, and organic matter
    • A. L. Page (Ed.). Methods of Soil Analysis. 2nd Ed. Amer. Soc. Agron. Madison, WI, 1980;
    • Nelson, D. W., & Sommer, L. E. (1982). Total carbon, organic carbon, and organic matter. In A. L. Page (Ed.). Methods of Soil Analysis. 2nd Ed. ASA Monogr. 9(2). Amer. Soc. Agron. Madison, WI, 1980; 539-579.
    • (1982) ASA Monogr. , vol.9 , Issue.2 , pp. 539-579
    • Nelson, D.W.1    Sommer, L.E.2
  • 33
    • 29244440707 scopus 로고    scopus 로고
    • Increasing Fe0-mediated HMX destruction in highly contaminated soil with didecyldimethylaammonium bromide surfactant
    • Park, J., Comfort, S. D., Shea, P. J., & Kim, J. S. (2005). Increasing Fe0-mediated HMX destruction in highly contaminated soil with didecyldimethylaammonium bromide surfactant. Environmental Science and Technology, 39, 9683-9688.
    • (2005) Environmental Science and Technology , vol.39 , pp. 9683-9688
    • Park, J.1    Comfort, S.D.2    Shea, P.J.3    Kim, J.S.4
  • 34
    • 0034659922 scopus 로고    scopus 로고
    • Remediation of Cr (VI) and Pb(II) aqueous solutions using supported, nanoscale zerovalent-iron
    • Ponder, S. M., Darab, J. G., & Mallouk, T. E. (2000). Remediation of Cr (VI) and Pb(II) aqueous solutions using supported, nanoscale zerovalent-iron. Environmental Science and Technology, 34, 2564-2569.
    • (2000) Environmental Science and Technology , vol.34 , pp. 2564-2569
    • Ponder, S.M.1    Darab, J.G.2    Mallouk, T.E.3
  • 35
    • 0000692494 scopus 로고
    • Cation exchange capacity
    • A. L. Page (Ed.), Methods of soil analysis, Part 2 Chemical and microbiological properties, 2nd edition.
    • Rhoades, J. D. (1982). Cation exchange capacity. In: A. L. Page (Ed.), Methods of soil analysis, Part 2 Chemical and microbiological properties, 2nd edition. Agronomy 9: 149-157.
    • (1982) Agronomy , vol.9 , pp. 149-157
    • Rhoades, J.D.1
  • 36
    • 0000125720 scopus 로고
    • Mode of chemical degradation of s-triazines by montmorillonite
    • Russell, J. D., Cruz, M., & White, J. L. (1968). Mode of chemical degradation of s-triazines by montmorillonite. Science, 160, 1340-1342.
    • (1968) Science , vol.160 , pp. 1340-1342
    • Russell, J.D.1    Cruz, M.2    White, J.L.3
  • 38
    • 0141544876 scopus 로고    scopus 로고
    • Enhancing metolachlor destruction rates with aluminum and iron salts during zerovalent iron treatment
    • Satapanajaru, T., Comfort, S. D., & Shea, P. J. (2003a). Enhancing metolachlor destruction rates with aluminum and iron salts during zerovalent iron treatment. Journal of Environmental Quality, 32, 1726-1734.
    • (2003) Journal of Environmental Quality , vol.32 , pp. 1726-1734
    • Satapanajaru, T.1    Comfort, S.D.2    Shea, P.J.3
  • 39
    • 0242509774 scopus 로고    scopus 로고
    • Green rust and iron oxide formation influences metolachlor dechlorination during zerovalent iron treatment
    • Satapanajaru, T., Shea, P. J., Comfort, S. D., & Roh, Y. (2003b). Green rust and iron oxide formation influences metolachlor dechlorination during zerovalent iron treatment. Environmental Science and Technology, 37, 5219-5227.
    • (2003) Environmental Science and Technology , vol.37 , pp. 5219-5227
    • Satapanajaru, T.1    Shea, P.J.2    Comfort, S.D.3    Roh, Y.4
  • 43
    • 4243147115 scopus 로고    scopus 로고
    • Accelerated remediation of pesticide-contaminated soil with zerovalent iron
    • Shea, P. A., Machacek, T. A., & Comfort, S. D. (2004). Accelerated remediation of pesticide-contaminated soil with zerovalent iron. Environmental Pollution, 132, 183-188.
    • (2004) Environmental Pollution , vol.191 , pp. 97-105
    • Shea, P.A.1    MacHacek, T.A.2    Comfort, S.D.3
  • 45
    • 0021327392 scopus 로고
    • Effects of the herbicide atrazine and its degradation products alone and in combination, on phototrophic organisms
    • Stratton, G. W. (1984). Effects of the herbicide atrazine and its degradation products alone and in combination, on phototrophic organisms. Archives Environmental Contamination and Toxicology, 13, 35-42.
    • (1984) Archives Environmental Contamination and Toxicology , vol.13 , pp. 35-42
    • Stratton, G.W.1
  • 47
    • 0019663203 scopus 로고
    • The reductive treatment of industrial wastewaters: 2: Process applications
    • G.F. Bennett, et. American Institute of Chemical Engineers Symposium, ser. 209, Water-1980.
    • Sweeny, K. H. (1981). The reductive treatment of industrial wastewaters: 2: Process applications. Page 72-78 in G.F. Bennett, et. American Institute of Chemical Engineers Symposium, ser. 209, Water-1980.
    • (1981) American Institute of Chemical Engineers Symposium, Ser. 209 , pp. 72-78
    • Sweeny, K.H.1
  • 49
    • 33751249340 scopus 로고    scopus 로고
    • Remediation of PCB contaminated soils using iron nano-particles
    • Varanasi, P., Fullana, A., & Sidhu, S. (2007). Remediation of PCB contaminated soils using iron nano-particles. Chemosphere, 66, 1031-1038.
    • (2007) Chemosphere , vol.66 , pp. 1031-1038
    • Varanasi, P.1    Fullana, A.2    Sidhu, S.3
  • 50
    • 0025118061 scopus 로고
    • Interaction of atrazine with Laurentian fulvic acid: Binding and hydrolysis
    • Wang, Z.-D., Gamber, D. S., & Langford, C. H. (1990). Interaction of atrazine with Laurentian fulvic acid: binding and hydrolysis. Analytica Chimica Acta, 232, 181-188.
    • (1990) Analytica Chimica Acta , vol.232 , pp. 181-188
    • Wang, Z.-D.1    Gamber, D.S.2    Langford, C.H.3
  • 51
    • 0031193606 scopus 로고    scopus 로고
    • Synthesizing nanoscale iron particles for rapid and complete dechlorination of TCE and PCBs
    • Wang, C.-B., & Zhang, W.-X. (1997). Synthesizing nanoscale iron particles for rapid and complete dechlorination of TCE and PCBs. Environmental Science and Technology, 31, 2154-2156.
    • (1997) Environmental Science and Technology , vol.31 , pp. 2154-2156
    • Wang, C.-B.1    Zhang, W.-X.2
  • 53
    • 0041375359 scopus 로고    scopus 로고
    • Nanoscale iron particles for environmental remediation: An overview
    • Zhang, W.-X. (2003). Nanoscale iron particles for environmental remediation: an overview. Journal of Nanoparticle Research, 5, 323-332.
    • (2003) Journal of Nanoparticle Research , vol.5 , pp. 323-332
    • Zhang, W.-X.1
  • 54
    • 0001018611 scopus 로고    scopus 로고
    • Treatment of chlorinated organic contaminants with nanoscale bimetallic particles
    • Zhang, W.-X., Wang, C.-B., & Lien, H.-L. (1998). Treatment of chlorinated organic contaminants with nanoscale bimetallic particles. Catalysis Today, 40, 387-395.
    • (1998) Catalysis Today , vol.40 , pp. 387-395
    • Zhang, W.-X.1    Wang, C.-B.2    Lien, H.-L.3
  • 55
    • 33748527252 scopus 로고    scopus 로고
    • 0 particles supported on chitosan and silica
    • 0 particles supported on chitosan and silica. Chemosphere, 65, 1137-1145.
    • (2006) Chemosphere , vol.65 , pp. 1137-1145
    • Zhu, B.-W.1    Lim, T.-T.2    Feng, J.3


* 이 정보는 Elsevier사의 SCOPUS DB에서 KISTI가 분석하여 추출한 것입니다.