32
Phytotechnology with Biomass Production
Moser, L., & Vogel, K. (1995). Switchgrass, big bluestem, and indiangrass.
Publications from USDA-ARS/UNL Faculty. https://digitalcommons.unl.edu/
usdaarsfacpub/2098.
Murányi, A., & Ködöböcz, L. (2008). Heavy metal uptake by plants in different phytoremediation treatments. VII Alps-Adria Scientific Workshop, Stara Lesna, Slovakia,
36, 387–390.
Narayanan, M., Erickson, L. E., & Davis, L. C. (1999). Simple plant-based design
strategies for volatile organic pollutants. Environmental Progress, 18(4), 231–242.
https://doi.org/10.1002/ep.670180409.
Nsanganwimana, F., Pourrut, B., Waterlot, C., Louvel, B., Bidar, G., Labidi, S., Fontaine,
J., Muchembled, J., Lounès-Hadj Sahraoui, A., Fourrier, H., & Douay, F. (2015).
Metal accumulation and shoot yield of Miscanthus × giganteus growing in contaminated agricultural soils: Insights into agronomic practices. Agriculture,
Ecosystems & Environment, 213, 61–71. https://doi.org/10.1016/j.agee.2015.07.023.
Nurzhanova, A., Pidlisnyuk, V., Abit, K., Nurzhanov, C., Kenessov, B., Stefanovska, T.,
& Erickson, L. (2019). Comparative assessment of using Miscanthus × giganteus
for remediation of soils contaminated by heavy metals: A case of military and
mining sites. Environmental Science and Pollution Research, 26(13), 13320–13333.
https://doi.org/10.1007/s11356-019-04707-z.
Ociepa, E. (2011). The effect of fertilization on yielding and heavy metals uptake by
maize and Virginia fanpetals (Sida hermaphrodita). Archives of Environmental
Protection, 37(2), 123–129.
Ogunkunle, C. O., Fatoba, P. O., Oyedeje, A. O., & Awotoye, O. O. (2014). Assessing
the heavy metal transfer and translocation by Sida acuta and Pennisetum purpureum for phytoremediation purposes. Albanian Journal of Agricultural Science,
13(1), 71–80.
Pandey, V. C., & Bajpai, O. (2019). Chapter 1-Phytoremediation: From theory toward
practice. In V. C. Pandey & K. Bauddh (Eds.), Phytomanagement of Polluted Sites
(pp. 1–49), Elsevier, New York. https://doi.org/10.1016/B978-0-12-813912-7.00001-6.
Papazoglou, E. G., Karantounias, G. A., Vemmos, S. N., & Bouranis, D. L. (2005).
Photosynthesis and growth responses of giant reed (Arundo donax L.) to the
heavy metals Cd and Ni. Environment International, 31(2), 243–249. https://doi.
org/10.1016/j.envint.2004.09.022.
Papazoglou, E. G., Serelis, K. G., & Bouranis, D. L. (2007). Impact of high cadmium
and nickel soil concentration on selected physiological parameters of Arundo
donax L. European Journal of Soil Biology, 43(4), 207–215. https://doi.org/10.1016/j.
ejsobi.2007.02.003.
Parrish, D. J., Casler, M. D., & Monti, A. (2012). The evolution of switchgrass as an
energy crop. In A. Monti (Ed.), Switchgrass: A Valuable Biomass Crop for Energy
(pp. 1–28), Springer, London. https://doi.org/10.1007/978-1-4471-2903-5_1.
Pavel, P.-B., Puschenreiter, M., Wenzel, W. W., Diacu, E., & Barbu, C. H. (2014). Aided
phytostabilization using Miscanthus sinensis × giganteus on heavy metal-contaminated soils. Science of the Total Environment, 479–480, 125–131. https://doi.
org/10.1016/j.scitotenv.2014.01.097.
Pidlisnyuk, V., Mamirova, A., Pranaw, K., Shapoval, P. Y., Trögl, J., & Nurzhanova,
A. (2020a). Potential role of plant growth-promoting bacteria in
Miscanthus × giganteus phytotechnology applied to the trace elements contaminated soils. International Biodeterioration & Biodegradation, 155, 105103. https://
doi.org/10.1016/j.ibiod.2020.105103.
Précédent

- 49/236

Suivant