56
Phytotechnology with Biomass Production
Hemapala, M. U. (2017). Robots for humanitarian demining. In: Canbolat, H. ed.
Robots Operating in Hazardous Environments, Books on Demand, Norderstedt,
Germany, 3–21. https://doi.org/10.5772/intechopen.70246.
Henner, P., Schiavon, M., Morel, J.-L., Lichtfouse, E., & Lichtfouse Polycyclic, E. (1997).
Polycyclic aromatic hydrocarbon (PAH) occurrence and remediation methods.
Analysis, 25(9). https://hal.archives-ouvertes.fr/hal-00193277.
Johnson, R. (2014). Hemp as an agricultural commodity. CRS Report No. RL32725.
http://www.pahic.org/white-papers/.
Kalderis, D., Juhasz, A. L., Boopathy, R., & Comfort, S. (2011). Soils contaminated with
explosives: Environmental fate and evaluation of state-of-the-art remediation
processes (IUPAC technical eport). Pure and Applied Chemistry, 83(7), 1407–1484.
https://doi.org/10.1351/PAC-REP-10-01-05.
Khalid, S., Shahid, M., Murtaza, B., Bibi, I., Natasha, Asif Naeem, M., & Niazi, N.
K. (2020). A critical review of different factors governing the fate of pesticides
in soil under biochar application. Science of the Total Environment, 711, 134645.
https://doi.org/10.1016/j.scitotenv.2019.134645.
Kumar, S., Singh, R., Kumar, V., Rani, A., & Jain, R. (2017). Cannabis sativa: A plant suitable for phytoremediation and bioenergy production. In: Bauddh, K., Singh, B.,
Korstad, J. eds. Phytoremediation Potential of Bioenergy Plants, Springer, Singapore,
269–285. https://doi.org/10.1007/978-981-10-3084-0_10.
Liber, Y., Létondor, C., Pascal-Lorber, S., & Laurent, F. (2018). Growth parameters
influencing uptake of chlordecone by Miscanthus species. Science of the Total
Environment, 624, 831–837. https://doi.org/10.1016/j.scitotenv.2017.12.071.
Liu, J., & Schnoor, J. L. (2008). Uptake and translocation of lesser-chlorinated polychlorinated biphenyls (PCBs) in whole hybrid poplar plants after hydroponic exposure.
Chemosphere, 73(10), 1608–1616. https://doi.org/10.1016/j.chemosphere.2008.08.009.
Loffredo, E., Picca, G., & Parlavecchia, M. (2020). Single and combined use of Cannabis
sativa L. and carbon-rich materials for the removal of pesticides and endocrinedisrupting chemicals from water and soil. Environmental Science and Pollution
Research, 1–16. https://doi.org/10.1007/s11356-020-10690-7.
Lunney, A. I., Zeeb, B. A., & Reimer, K. J. (2004). Uptake of weathered DDT in vascular plants: Potential for phytoremediation. Environmental Science and Technology,
38(22), 6147–6154. https://doi.org/10.1021/es030705b.
Mamirova, A., Pidlisnyuk, V., Amirbekov, A., Sevcu, A., & Nurzhanova, A. (2020).
Phytoremediation potential of Miscanthus sinensis And. in organochlorine pesticides contaminated soil amended by Tween 20 and Activated carbon. Environmental
Science and Pollution Research. https://doi.org/10.1007/s11356-020-11609-y.
McCutcheon, S. C., & Schnoor, J. L. (2003). Phytoremediation: Transformation and Control
of Contaminants, Wiley, Hoboken, NJ.
Mench, M., Lepp, N., Bert, V., Schwitzguébel, J.-P., Gawronski, S. W., Schröder, P., &
Vangronsveld, J. (2010). Successes and limitations of phytotechnologies at field
scale: Outcomes, assessment and outlook from COST Action 859. Journal of
Soils and Sediments, 10(6), 1039–1070. https://doi.org/10.1007/s11368-010-0190-x.
MHRK and MEPRK . (2004). Standards for maximum permissible concentrations of harmful substances, pests and other biological substances polluting
the≈soil, approved by a joint order of the Ministry of Health of the Republic
of Kazakhstan dated January 30, 2004 No. 99 and the Ministry of Environmental
Protection of the Republic of Kazakhstan dated January 27, 2004, No. 21-P.
Précédent

- 73/236

Suivant