114
Phytotechnology with Biomass Production
University of Iowa Facilities Management. (2020). Renewable energy. https://www.
facilities.uiowa.edu/energy-environment/renewable-energy.
USDA/NRCS. (2011). Planting and managing giant Miscanthus as a bioenergy crop
(Technical Note No. 4). USDA Natural Resources Conservation Service Plant
Materials Program. https://www.nrcs.usda.gov/Internet/FSE_DOCUMENTS/
stelprdb1044768.pdf.
U.S. Environmental Protection Agency. (1994). A plain English guide to the EPA part 503
Biosolids Rule (EPA/832/R-93/003). Office of Wastewater Management, United
States Environmental Protection Agency.
U.S. Environmental Protection Agency. (2019). Konza Prairie KNZ184. https://www3.
epa.gov/castnet/site_pages/KNZ184.html.
White, J. C., & Kottler, B. D. (2002). Citrate-mediated increase in the uptake of
weathered 2,2-bis(p-chlorophenyl)1,1-dichloroethylene residues by plants.
Environmental Toxicology and Chemistry, 21(3), 550–556. https://doi.org/10.1002/
etc.5620210312.
White, J. C., Mattina, M. I., Lee, W.-Y., Eitzer, B. D., & Iannucci-Berger, W. (2003). Role
of organic acids in enhancing the desorption and uptake of weathered p,p′-DDE
by Cucurbita pepo. Environmental Pollution, 124(1), 71–80. https://doi.org/10.1016/
S0269-7491(02)00409-8.
White, J. C., Parrish, Z. D., Gent, M. P. N., Iannucci‐Berger, W., Eitzer, B. D., Isleyen, M.,
& Mattina, M. I. (2006). Soil amendments, plant age, and intercropping impact
p,p′-DDE bioavailability to Cucurbita pepo. Journal of Environmental Quality, 35(4),
992–1000. https://doi.org/10.2134/jeq2005.0271.
Xue, S., Kalinina, O., & Lewandowski, I. (2015). Present and future options for
Miscanthus propagation and establishment. Renewable and Sustainable Energy
Reviews, 49, 1233–1246. https://doi.org/10.1016/j.rser.2015.04.168.
Zeng, F., Chen, S., Miao, Y., Wu, F., & Zhang, G. (2008). Changes of organic acid exudation and rhizosphere pH in rice plants under chromium stress. Environmental
Pollution, 155(2), 284–289. https://doi.org/10.1016/j.envpol.2007.11.019.
Zinchenko, O. V. (2013). The evaluation of the effect of plants growth regulators on the
photosynthesis intensity, survival rate and morphological indices of Miscanthus
giganteus. Scientific Notices of the Institute of Energy Crops and Sugar Beets, 19,
47–51. http://www.bioenergy.gov.ua/sites/default/files/articles/47.pdf.
Zinchenko, O. V., Zinchenko, V. V., & Ponomarenko, S. P. (2016). Environmental aspects
of the cultivation of Giant Miscanthus, potato and oat. In V. V. Pidlisnyuk & T.
Stefanovska (Eds.), Phytotechnology with Biomass Production for Re-cultivation of
Lands Contaminated and Damaged by Military Activities (pp. 102–105). Publisher
house of NULES, Kyiv, Ukraine, ISBN 978-617-7396-14-6.
Zinchenko, V. O., Martynyuk, H. M., Zinchenko, O. V., Pitkevich, S., & Wisniewski,
G. (2009). Features of growth of Miscanthus × giganteus under radioactive
contamination. The V Scientific Conference for Students and Young Scientists,
138–140. Zhytomyr National Agroecological University, Zhytomyr, Ukraine (in
Ukrainian).
Phytotechnology with Biomass Production
University of Iowa Facilities Management. (2020). Renewable energy. https://www.
facilities.uiowa.edu/energy-environment/renewable-energy.
USDA/NRCS. (2011). Planting and managing giant Miscanthus as a bioenergy crop
(Technical Note No. 4). USDA Natural Resources Conservation Service Plant
Materials Program. https://www.nrcs.usda.gov/Internet/FSE_DOCUMENTS/
stelprdb1044768.pdf.
U.S. Environmental Protection Agency. (1994). A plain English guide to the EPA part 503
Biosolids Rule (EPA/832/R-93/003). Office of Wastewater Management, United
States Environmental Protection Agency.
U.S. Environmental Protection Agency. (2019). Konza Prairie KNZ184. https://www3.
epa.gov/castnet/site_pages/KNZ184.html.
White, J. C., & Kottler, B. D. (2002). Citrate-mediated increase in the uptake of
weathered 2,2-bis(p-chlorophenyl)1,1-dichloroethylene residues by plants.
Environmental Toxicology and Chemistry, 21(3), 550–556. https://doi.org/10.1002/
etc.5620210312.
White, J. C., Mattina, M. I., Lee, W.-Y., Eitzer, B. D., & Iannucci-Berger, W. (2003). Role
of organic acids in enhancing the desorption and uptake of weathered p,p′-DDE
by Cucurbita pepo. Environmental Pollution, 124(1), 71–80. https://doi.org/10.1016/
S0269-7491(02)00409-8.
White, J. C., Parrish, Z. D., Gent, M. P. N., Iannucci‐Berger, W., Eitzer, B. D., Isleyen, M.,
& Mattina, M. I. (2006). Soil amendments, plant age, and intercropping impact
p,p′-DDE bioavailability to Cucurbita pepo. Journal of Environmental Quality, 35(4),
992–1000. https://doi.org/10.2134/jeq2005.0271.
Xue, S., Kalinina, O., & Lewandowski, I. (2015). Present and future options for
Miscanthus propagation and establishment. Renewable and Sustainable Energy
Reviews, 49, 1233–1246. https://doi.org/10.1016/j.rser.2015.04.168.
Zeng, F., Chen, S., Miao, Y., Wu, F., & Zhang, G. (2008). Changes of organic acid exudation and rhizosphere pH in rice plants under chromium stress. Environmental
Pollution, 155(2), 284–289. https://doi.org/10.1016/j.envpol.2007.11.019.
Zinchenko, O. V. (2013). The evaluation of the effect of plants growth regulators on the
photosynthesis intensity, survival rate and morphological indices of Miscanthus
giganteus. Scientific Notices of the Institute of Energy Crops and Sugar Beets, 19,
47–51. http://www.bioenergy.gov.ua/sites/default/files/articles/47.pdf.
Zinchenko, O. V., Zinchenko, V. V., & Ponomarenko, S. P. (2016). Environmental aspects
of the cultivation of Giant Miscanthus, potato and oat. In V. V. Pidlisnyuk & T.
Stefanovska (Eds.), Phytotechnology with Biomass Production for Re-cultivation of
Lands Contaminated and Damaged by Military Activities (pp. 102–105). Publisher
house of NULES, Kyiv, Ukraine, ISBN 978-617-7396-14-6.
Zinchenko, V. O., Martynyuk, H. M., Zinchenko, O. V., Pitkevich, S., & Wisniewski,
G. (2009). Features of growth of Miscanthus × giganteus under radioactive
contamination. The V Scientific Conference for Students and Young Scientists,
138–140. Zhytomyr National Agroecological University, Zhytomyr, Ukraine (in
Ukrainian).
