55
Phytoremediation of Organics
Das, P. (2014). Chemically catalyzed phytoremediation of 2,4,6-trinitrotoluene
(TNT) contaminated soil by vetiver grass (Chrysopogon zizanioides L.). Theses,
Dissertations and Culminating Projects. Montclair State University. https://digitalcommons.montclair.edu/etd/57.
Dathan, J. (2020). The broken land: The environmental consequences of explosive
weapon use. Action on Armed Violence, London, UK. www.aoav.org.uk.
Denyes, M. J., Langlois, V. S., Rutter, A., & Zeeb, B. A. (2012). The use of biochar to
reduce soil PCB bioavailability to Cucurbita pepo and Eisenia fetida. Science of the
Total Environment, 437, 76–82. https://doi.org/10.1016/j.scitotenv.2012.07.081.
Denyes, M. J., Parisien, M. A., Rutter, A., & Zeeb, B. A. (2014). Physical, chemical and
biological characterization of six biochars produced for the remediation of contaminated sites. Journal of Visualized Experiments : JoVE, 93, e52183. https://doi.
org/10.3791/52183.
Denyes, M. J., Rutter, A., & Zeeb, B. A. (2013). In situ application of activated carbon and
biochar to PCB-contaminated soil and the effects of mixing regime. Environmental
Pollution, 182, 201–208. https://doi.org/10.1016/j.envpol.2013.07.016.
Denyes, M. J., Rutter, A., & Zeeb, B. A. (2016). Bioavailability assessments following biochar and activated carbon amendment in DDTcontaminated soil. Chemosphere, 144, 1428–1434. https://doi.org/10.1016/j.
chemosphere.2015.10.029.
Esteve-Núñez, A., Caballero, A., & Ramos, J. L. (2001). Biological degradation of
2,4,6-trinitrotoluene. Microbiology and Molecular Biology Reviews, 65(3), 335–352.
https://doi.org/10.1128/mmbr.65.3.335-352.2001.
Fairchild, J. F., Ruessler, D. S., & Carlson, A. R. (1998). Comparative sensitivity of five
species of macrophytes and six species of algae to atrazine, metribuzin, alachlor, and metolachlor. Environmental Toxicology and Chemistry, 17(9), 1830–1834.
https://doi.org/10.1002/etc.5620170924.
Ficko, S. A., Rutter, A., & Zeeb, B. A. (2011). Phytoextraction and uptake patterns of
weathered polychlorinated biphenyl-contaminated soils using three perennial weed species. Journal of Environmental Quality, 40(6), 1870–1877. https://doi.
org/10.2134/jeq2011.0144.
Field, J. A., & Sierra-Alvarez, R. (2008). Microbial degradation of chlorinated dioxins. Chemosphere, 71(6), 1005–1018. https://doi.org/10.1016/j.
chemosphere.2007.10.039.
Fiorenza, S., Oubre, C. L., & Ward, C. H. (2000). Phytoremediation of Hydrocarbon
Contaminated Soil, Lewis Publishers, New York.
Gąbka, D., & Wolski, K. (2011). Use of turfgrasses in landfill leachate treatment. Polish
Journal of Environmental Studies, 20(5), 1161.
Gandia-Herrero, F., Lorenz, A., Larson, T., Graham, I. A., Bowles, D. J., Rylott, E.
L., & Bruce, N. C. (2008). Detoxification of the explosive 2,4,6-trinitrotoluene
in Arabidopsis: Discovery of bifunctional O- and C-glucosyltransferases. Plant
Journal, 56(6), 963–974. https://doi.org/10.1111/j.1365-313X.2008.03653.x.
Glick, B. R. (2010). Using soil bacteria to facilitate phytoremediation. Biotechnology
Advances, 28(3), 367–374. https://doi.org/10.1016/j.biotechadv.2010.02.001.
Gonzalez, M., Miglioranza, K. S. B., Aizpún, J. E., Isla, F. I., & Peña, A. (2010). Assessing
pesticide leaching and desorption in soils with different agricultural activities
from Argentina (Pampa and Patagonia). Chemosphere, 81(3), 351–358. https://doi.
org/10.1016/j.chemosphere.2010.07.021.
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