Agriculture Reference
In-Depth Information
Jamil, S., Abhilash, P.C., Singh, N., Sharma, P. N. (2009) Jatropha curcas: A potential crop for
phytoremediation. Journal of Hazardous Materials 172: 269 - 275.
Kamath, R., Rentz, J.A., Schinoor, J.L., Alvarez, P.J.J. (2004) Phytoremediation of
hydrocarbon-contaminated soils: Principles and applications. In: Petroleum
biotechnology development and perspectives. Vazquez-Duhalt, R and Quintero-
Ramirez, R. (eds). Elsevier, Amsterdam, pp 447 - 478.
Kim S, Choi D.H, Sim D.S, Oh Y. (2005). Evaluation of bioremediation effectiveness on crude
oil-contaminated sand. Chemosphere 59: 845 - 852.
Kotas J and Stasicka Z. (2000) Chromium occurrence in the environment and methods of its
speciation. Environmental pollution 107: 263-283.
Kvenvolden, K.A., Cooper, C.K. (2003) Natural seepage of crude oil into the marine
environment. Geo-Marine Letters 23(3-4): 140 - 146.
Lau, K.L., Tsang, Y.Y., Chiu, S.W. (2003). Use of spent mushroom compost to bioremediate
PAH-contaminated samples. Chemosphere 52 (9), 1539-1546.
Lee, K., Park, J.W. and Ahn, I. S. (2003). Effect of additional carbon source on naphthalene
biodegradation by Pseudomonas putida G7, Journal of Hazardous Materials. 105:
157-167.
Liebeg, E. W. and Cutright, T. J. (1999). The investigation of enhanced bioremediation
through the addition of macro and micro nutrients in a PAH contaminated soil.
International Biodeterioration and Biodegradation. 44: 55 - 64.
Lloyd J R. (2002). Bioremediation of metals: The application of microorganisms that make
and break minerals. Microbiology Today 29: 67-69.
Lloyd, J.R., Anderson, R.T, Macaskie, L.E. (2005) Bioremediation of metals and
radionuclides. In: Bioremediation: Applied microbial solutions for real world
environmental cleanup. Atlas, R.M and Philp, J.C (eds). ASM Press, ISBN 1-55581-
239-2, Washington, D.C. pp 294.
Malik A (2004). Metal bioremediation through growing cells. Environment International 30:
261-278.
Mangkoedihardjo, S., Surahmaida, (2008) Jatropha curcas L. for phytoremediation of lead and
cadmium polluted soil, World Applied Science Journal 4(4): 519 - 522.
Marley, M.C., Hazebrouck, D.J., Walsh, M.T. (1992). The application of in situ air sparging as
an innovative soils and groundwater remediation technology, Groundwater
Monitor and Remediation 12 (2): 137-144.
Marmiroli, N., Marmiroli, M., Maestri, E. (2006). Phytoremediation and phytotechnologies:
A review for the present and the future. In: Twardowska, I., Allen, H.E, and
Haggblom, M.H. (eds). Soil and water pollution monitoring, protection and
remediation. Springer, Netherland.
Meagher, R.B. (2000). Phytoremediation of toxic elemental and organic pollutants, Current
Opinion on Plant Biology 3: 153-162.
Muratova, A. Y, Turkovskaya, O. V, Hubner, T, Kuschk, P. (2003) Studies of the efficacy of
alfalfa and reed in the phytoremediation of hydrocarbon polluted soil. Applied
Biochemistry and Microbiology 39:599 - 605.
Nadim, F., Hoag, G.E., Liu, S., Carley, R.J., Zack, P. (2000). Detection and remediation of soil
aquifer systems contaminated with petroleum products: an overview. Journal of
Petroleum Science and Engineering 26: 169 - 178.
National Oceanic and Atmospheric Administration (NOAA). Damage Assessment and
Restoration Program. August 1995 .Injury Guidance Document for Natural
Resources and Services under the Oil Pollution Act of 1990 (Public Review Draft).
Prepared by M.T. Huguenin, D.H. Haury, and J.C. Weiss
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