29
Phytotechnologies for Site Remediation
Gleeson, A. M. (2007). Phytoextraction of lead from contaminated soil by Panicum virgatum
L. (switchgrass) and associated growth responses [Master, Queen’s University].
Greef, J., & Deuter, M. (1993). Syntaxonomy of Miscanthus × giganteus Greef et Deu.
Angewandte Botanik, 67(3/4), 87–90.
Gudichuttu, V. (2014). Phytostabilization of multi-metal contaminated mine waste materials:
Long-term monitoring of influence of soil amendments on soil properties, plants, and
biota and the avoidance response of earthworms [Thesis, Kansas State University].
https://krex.k-state.edu/dspace/handle/2097/16989.
Guo, H., Wu, Y., Hong, C., Chen, H., Chen, X., Zheng, B., Jiang, D., & Qin, W. (2017).
Enhancing digestibility of Miscanthus using lignocellulolytic enzyme produced
by Bacillus. Bioresource Technology, 245, 1008–1015. https://doi.org/10.1016/j.
biortech.2017.09.034.
Heaton, E. A., Dohleman, F. G., & Long, S. P. (2008). Meeting US biofuel goals with
less land: The potential of Miscanthus. Global Change Biology, 14(9), 2000–2014.
https://doi.org/10.1111/j.1365-2486.2008.01662.x.
Herrera, A. M., & Dudley, T. L. (2003). Reduction of riparian arthropod abundance
and diversity as a consequence of giant reed (Arundo donax) invasion. Biological
Invasions, 5(3), 167–177. https://doi.org/10.1023/A:1026190115521.
Hettiarachchi, G. M., Pierzynski, G. M., & Ransom, M. D. (2000). In situ stabilization
of soil lead using phosphorus and manganese oxide. Environmental Science &
Technology, 34(21), 4614–4619. https://doi.org/10.1021/es001228p.
Holder, A. J., Clifton‐Brown, J., Rowe, R., Robson, P., Elias, D., Dondini, M., McNamara,
N. P., Donnison, I. S., & McCalmont, J. P. (2019). Measured and modelled effect of
land‐use change from temperate grassland to Miscanthus on soil carbon stocks
after 12 years. GCB Bioenergy, 11(10), 1173–1186. https://doi.org/10.1111/gcbb.12624.
Hromádko, L., Vranová, V., Techer, D., Laval-Gilly, P., Rejšek, K., Formánek, P., &
Falla, J. (2014). Composition of root exudates of Miscanthus × giganteus Greef
et Deu. Acta Universitatis Agriculturae et Silviculturae Mendelianae Brunensis,
58(1), 71–76.
Hu, Y., Schäfer, G., Duplay, J., & Kuhn, N. J. (2018). Bioenergy crop induced changes in
soil properties: A case study on Miscanthus fields in the Upper Rhine Region.
PLoS One, 13(7), e0200901. https://doi.org/10.1371/journal.pone.0200901.
Hunt, A. J., Anderson, C. W. N., Bruce, N., García, A. M., Graedel, T. E., Hodson, M.,
Meech, J. A., Nassar, N. T., Parker, H. L., Rylott, E. L., Sotiriou, K., Zhang, Q., &
Clark, J. H. (2014). Phytoextraction as a tool for green chemistry. Green Processing
and Synthesis, 3(1), 3–22. https://doi.org/10.1515/gps-2013-0103.
Jeguirim, M., & Trouvé, G. (2009). Pyrolysis characteristics and kinetics of Arundo
donax using thermogravimetric analysis. Bioresource Technology, 100(17), 4026–
4031. https://doi.org/10.1016/j.biortech.2009.03.033.
Jiang, H., Zhao, X., Fang, J., & Xiao, Y. (2018). Physiological responses and metal uptake
of Miscanthus under cadmium/arsenic stress. Environmental Science and Pollution
Research, 25(28), 28275–28284. https://doi.org/10.1007/s11356-018-2835-z.
Johnson, D. (2014). Induced phytoextraction of lead from contaminated urban soil
through manipulation of rhizosphere and plant biogeochemical functions in switchgrass (Panicum virgatum) [Master of Science in Integrative Biology Theses,
Kennesaw State University]. https://digitalcommons.kennesaw.edu/
integrbiol_etd/2.
Juang, K.-W., & Lee, D. Y. (2010). Prediction of cadmium removal from highly contaminated
soils by phytoextraction with different switchgrass cultivars, 19th World Congress of
Soil Science, Soil Solutions for a Changing World, Brisbane, Australia.
Phytotechnologies for Site Remediation
Gleeson, A. M. (2007). Phytoextraction of lead from contaminated soil by Panicum virgatum
L. (switchgrass) and associated growth responses [Master, Queen’s University].
Greef, J., & Deuter, M. (1993). Syntaxonomy of Miscanthus × giganteus Greef et Deu.
Angewandte Botanik, 67(3/4), 87–90.
Gudichuttu, V. (2014). Phytostabilization of multi-metal contaminated mine waste materials:
Long-term monitoring of influence of soil amendments on soil properties, plants, and
biota and the avoidance response of earthworms [Thesis, Kansas State University].
https://krex.k-state.edu/dspace/handle/2097/16989.
Guo, H., Wu, Y., Hong, C., Chen, H., Chen, X., Zheng, B., Jiang, D., & Qin, W. (2017).
Enhancing digestibility of Miscanthus using lignocellulolytic enzyme produced
by Bacillus. Bioresource Technology, 245, 1008–1015. https://doi.org/10.1016/j.
biortech.2017.09.034.
Heaton, E. A., Dohleman, F. G., & Long, S. P. (2008). Meeting US biofuel goals with
less land: The potential of Miscanthus. Global Change Biology, 14(9), 2000–2014.
https://doi.org/10.1111/j.1365-2486.2008.01662.x.
Herrera, A. M., & Dudley, T. L. (2003). Reduction of riparian arthropod abundance
and diversity as a consequence of giant reed (Arundo donax) invasion. Biological
Invasions, 5(3), 167–177. https://doi.org/10.1023/A:1026190115521.
Hettiarachchi, G. M., Pierzynski, G. M., & Ransom, M. D. (2000). In situ stabilization
of soil lead using phosphorus and manganese oxide. Environmental Science &
Technology, 34(21), 4614–4619. https://doi.org/10.1021/es001228p.
Holder, A. J., Clifton‐Brown, J., Rowe, R., Robson, P., Elias, D., Dondini, M., McNamara,
N. P., Donnison, I. S., & McCalmont, J. P. (2019). Measured and modelled effect of
land‐use change from temperate grassland to Miscanthus on soil carbon stocks
after 12 years. GCB Bioenergy, 11(10), 1173–1186. https://doi.org/10.1111/gcbb.12624.
Hromádko, L., Vranová, V., Techer, D., Laval-Gilly, P., Rejšek, K., Formánek, P., &
Falla, J. (2014). Composition of root exudates of Miscanthus × giganteus Greef
et Deu. Acta Universitatis Agriculturae et Silviculturae Mendelianae Brunensis,
58(1), 71–76.
Hu, Y., Schäfer, G., Duplay, J., & Kuhn, N. J. (2018). Bioenergy crop induced changes in
soil properties: A case study on Miscanthus fields in the Upper Rhine Region.
PLoS One, 13(7), e0200901. https://doi.org/10.1371/journal.pone.0200901.
Hunt, A. J., Anderson, C. W. N., Bruce, N., García, A. M., Graedel, T. E., Hodson, M.,
Meech, J. A., Nassar, N. T., Parker, H. L., Rylott, E. L., Sotiriou, K., Zhang, Q., &
Clark, J. H. (2014). Phytoextraction as a tool for green chemistry. Green Processing
and Synthesis, 3(1), 3–22. https://doi.org/10.1515/gps-2013-0103.
Jeguirim, M., & Trouvé, G. (2009). Pyrolysis characteristics and kinetics of Arundo
donax using thermogravimetric analysis. Bioresource Technology, 100(17), 4026–
4031. https://doi.org/10.1016/j.biortech.2009.03.033.
Jiang, H., Zhao, X., Fang, J., & Xiao, Y. (2018). Physiological responses and metal uptake
of Miscanthus under cadmium/arsenic stress. Environmental Science and Pollution
Research, 25(28), 28275–28284. https://doi.org/10.1007/s11356-018-2835-z.
Johnson, D. (2014). Induced phytoextraction of lead from contaminated urban soil
through manipulation of rhizosphere and plant biogeochemical functions in switchgrass (Panicum virgatum) [Master of Science in Integrative Biology Theses,
Kennesaw State University]. https://digitalcommons.kennesaw.edu/
integrbiol_etd/2.
Juang, K.-W., & Lee, D. Y. (2010). Prediction of cadmium removal from highly contaminated
soils by phytoextraction with different switchgrass cultivars, 19th World Congress of
Soil Science, Soil Solutions for a Changing World, Brisbane, Australia.
