35
Phytotechnologies for Site Remediation
Vassey, T. L., George, J. R., & Mullen, R. E. (1985). Early-, mid-, and late-spring
establishment of switchgrass at several seeding rates. Agronomy Journal, 77(2),
253–257. https://doi.org/10.2134/agronj1985.00021962007700020018x.
Vogel, K. P. (1987). Seeding rates for establishing big bluestem and switchgrass with
preemergence atrazine applications. Agronomy Journal, 79(3), 509–512. https://
doi.org/10.2134/agronj1987.00021962007900030021x.
Vogel, K. P. (2000). Improving warm-season forage grasses using selection, breeding, and biotechnology. In Kenneth J. Moore & Bruce E. Anderson (Eds.), Native
Warm-Season Grasses: Research Trends and Issues (pp. 83–106). John Wiley & Sons,
Ltd. https://doi.org/10.2135/cssaspecpub30.c6.
Wang, C., Kong, Y., Hu, R., & Zhou, G. (2020). Miscanthus: A fast-growing crop for
environmental remediation and biofuel production. GCB Bioenergy, 13, 58–69.
https://doi.org/10.1111/gcbb.12761.
Wijesekara, H., Bolan, N. S., Vithanage, M., Xu, Y., Mandal, S., Brown, S. L.,
Hettiarachchi, G. M., Pierzynski, G. M., Huang, L., Ok, Y. S., Kirkham, M. B.,
Saint, C. P., & Surapaneni, A. (2016). Chapter Two - Utilization of biowaste
for mine spoil rehabilitation. In D. L. Sparks (Ed.), Advances in Agronomy
(Vol. 138, pp. 97–173). Academic Press, Cambridge, MA. https://doi.org/10.1016/
bs.agron.2016.03.001.
Wilkins, C. (1997). The uptake of copper, arsenic and zinc by Miscanthus—
Environmental implications for use as an energy crop. Aspects of Applied Biology,
No. 49, 335–340. https://www.cabdirect.org/cabdirect/abstract/19970707775.
Wolf, D. D., & Fiske, D. A. (2009). Planting and managing switchgrass for forage, wildlife,
and conservation. https://vtechworks.lib.vt.edu/handle/10919/50258.
Xia, H. P. (2004). Ecological rehabilitation and phytoremediation with four grasses
in oil shale mined land. Chemosphere, 54(3), 345–353. https://doi.org/10.1016/
S0045-6535(03)00763-X.
Yang, M., Xiao, X., Miao, X., Guo, Z., & Wang, F. (2012). Effect of amendments on
growth and metal uptake of giant reed (Arundo donax L.) grown on soil contaminated by arsenic, cadmium and lead. Transactions of Nonferrous Metals Society of
China, 22(6), 1462–1469. https://doi.org/10.1016/S1003-6326(11)61342-3.
Yang, S., Liao, B., Li, J., Guo, T., & Shu, W. (2010). Acidification, heavy metal mobility and nutrient accumulation in the soil–plant system of a revegetated
acid mine wasteland. Chemosphere, 80(8), 852–859. https://doi.org/10.1016/j.
chemosphere.2010.05.055.
Zema, D. A., Bombino, G., Andiloro, S., & Zimbone, S. M. (2012). Irrigation of energy
crops with urban wastewater: Effects on biomass yields, soils and heating
values. Agricultural Water Management, 115, 55–65. https://doi.org/10.1016/j.
agwat.2012.08.009.
Zgorelec, Ž. (2009). Phytoaccumulation of metals and metalloids from soil polluted by coal
ash [University of Zagreb]. https://www.bib.irb.hr/439719?rad=439719.
Zgorelec, Z., Bilandzija, N., Knez, K., Galic, M., & Zuzul, S. (2020). Cadmium and mercury phytostabilization from soil using Miscanthus × giganteus. Scientific Reports,
10(1), 6685. https://doi.org/10.1038/s41598-020-63488-5.
Zhang, J., Yang, S., Huang, Y., & Zhou, S. (2015). The tolerance and accumulation of
Miscanthus sacchariflorus (maxim.) Benth., an energy plant species, to cadmium.
International Journal of Phytoremediation, 17(6), 538–545. https://doi.org/10.1080/
15226514.2014.922925.
Précédent

- 52/236

Suivant