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Connected As: <Anonymous> Contact: srcosmos@aegean.gr |
Ru X, Wazne M, Frankovic JW:
"Degradation of Hexahydro-1,3,1-Trinitro-1,3,5-Triazine(RDX) by polymer coated Nano Zero Valent iron (NZVI)",
In PROTECTION2010: (Jul 2010)
References included in article: 18 records found.
| Order of appearence | Full citation | SRCosmos Link |
| 1 | Kaplan AS, Berghout CF, Pecznik A, (1965) Human intoxication from RDX. Archives of Environmental Health, Vol.10, pp. 877-883. | |
| 2 | U.S. EPA. (1989) Health and Environmental Effects Document for RDX Cyclonite. Environmental Criteria and Assessment Office, Office of Health and Environmental Assessment, Cincinnati, OH. ECAO-CIN-GO78. | |
| 3 | Burrows WD, Chyrek RH, Noss CI, Small MJ, (1984) Treatment for removal of munition chemicals for army industrial wastewaters, in: MID Atlantic Industrial Waste Conference, Toxic and Hazardous Wastes, 1984. | |
| 4 | Zhang BH, Pan XP, Cobb GP, Anderson TA, (2009) Uptake, ioaccumulation, and biodegradation of hexahydro-1,3,5-trinitro-1,3,5-triazine (RDX) and its reduced metabolites (MNX and TNX) by the earthworm (Eisenia fetida). Chemosphere, Vol. 76, pp. 76-82. | |
| 5 | Man JK, Finneran KT, (2009) Hexahydro-1,3,5-trinitro-1,3,5-triazine (RDX) reduction is concurrently mediated by direct electron transfer from hydroquinones and resulting biogenic Fe(II) formed during electron shuttle-amended biodegradation. Environmental Engineering Science, Vol. 26, pp. 961-971. | |
| 6 | Oh BT, Just CL, Alvarez PJ, (2001) Hexahydro-1,3,5-trinitro-1,3,5-triazine mineralization by zerovalent iron and mixed anaerobic cultures. Environmental. Science Technology, Vol. 35, pp. 4341-4346. | |
| 7 | Wanaratna P, Christodoulatos C, Sidhoum M, (2006) Kinetics of RDX degradation by zero-valent iron (ZVI). Journal of Hazardous Materials, Vol.136, pp. 68–74. | |
| 8 | Naia G, Halasz A, Thiboutot S, Ampleman G, Hawari I, (2008) Degradation of dexahydro-1,3,5-trinitro-1,3,5-triazine (RDX) using zerovalent iron nanoparticles. Environmental Science Technology, Vol. 42, pp. 4364–4370. | |
| 9 | Mc-Cormick NG, Cornell JH, Kaplan AM, (1981) Biodegradation of hexahydro-1,3,5-trinitro-1,3,5-triazine. Applied and Environmental microbiology, Vol. 42, pp. 817-823. | |
| 10 | Hoffsommer JC, Rosen JM, (1973) Hydrolysis of explosives in sea water, Bulletin of Environmental Contamination and Toxicology. Vol. 10, pp. 78-79. | |
| 11 | Saleh N, Sirk K, Liu YQ, Phenrat T, Dufour B, Matyjaszewski K, Tilton RD, Lowry GV, (2007) Surface modifications enhance nanoiron transport and NAPL targeting in saturated porous media. Environmental Engineering. Science, Vol. 24, pp. 45-57. | |
| 12 | Wang CB, Zhang WX, (1997) Synthesizing nanoscale iron particles for rapid and complete dechlorination of TCE and PCBs. Environmental Science Technology, Vol. 31, pp. 2154-2156. | |
| 13 | He F, Zhang M, Qian TW, Zhao DY, (2009) Transport of carboxymethyl cellulose stabilized iron nanoparticles in porous media: Column experiments and modeling. Journal of Colloid and Interface Science, Vol. 334, pp. 96-102. | |
| 14 | Zhuang J, Qi J, Jin Y, (2005) Retention and transport of amphiphilic colloids under unsaturated flow conditions: effect of particle size and surface property. Environmental Science technology, Vol. 39, pp. 7853-7859. | |
| 15 | He F, Zhao DY, (2008) Hydrodechlorination of trichloroethene using stabilized Fe-Pd nanoparticles: Reaction mechanism and effects of stabilizers, catalysts and reaction conditions. Applied Catalysis B: Environmental. Vol. 84, pp. 533-540. | |
| 16 | He F, Zhao D, Liu J, Roberts CB, (2007) Stabilization of Fe?Pd nanoparticles with sodium carboxymethyl cellulose for enhanced transport and dechlorination of trichloroethylene in soil and groundwater. Industrial & Engineering Chemistry Research, Vol. 46, pp. 29-34. | |
| 17 | Tiraferri A, Chen KL, Sethi R, Elimelech M, (2008) Reduced aggregation and sedimentation of zero-valent iron nanoparticles in the presence of guar gum. Journal of Colloid and Interface Science, Vol. 324, pp. 71-79 | |
| 18 | Kanel SR, Choi H, (2007) Transport characteristics of surface-modified nanoscale zero-valent iron in porous media. Water Science & Technology. Vol. 55, pp. 157-162. |