109
Miscanthus Production
Denyes, M. J., Rutter, A., & Zeeb, B. A. (2013). In situ application of activated carbon and biochar to PCB-contaminated soil and the effects of mixing regime.
Environmental Pollution, 182, 201–208. https://doi.org/10.1016/j.envpol.2013.07.016.
Dong, H., Green, S. V., Nishiwaki, A., Yamada, T., Stewart, J. R., Deuter, M., & Sacks, E.
J. (2019). Winter hardiness of Miscanthus (I): Overwintering ability and yield of
new Miscanthus × giganteus genotypes in Illinois and Arkansas. GCB Bioenergy,
11(5), 691–705. https://doi.org/10.1111/gcbb.12588.
Doronin, V. A., Dryha, V. V., Kravchenko, Y. A., Mykolaiko, V. P., Karpuk, L. M., &
Krasnoshtan, I. V. (2019). Growing of Miscanthus × giganteus planting material
in the conditions of unstable moistening. Eurasian Journal of Biosciences, 13(2),
1101–1108. http://www.ejobios.org/article/growing-of-miscantus-giganteusplanting-material-in-the-conditions-of-unstable-moistening-7231.
Dubis, B., Jankowski, K. J., Załuski, D., & Sokólski, M. (2020). The effect of sewage
sludge fertilization on the biomass yield of giant miscanthus and the energy
balance of the production process. Energy, 206, 118189. https://doi.org/10.1016/j.
energy.2020.118189.
Elliott, D. W., Lien, H.-L., & Zhang, W.-X. (2009). Degradation of lindane by zerovalent iron nanoparticles. Journal of Environmental Engineering, 135(5), 317–324.
https://doi.org/10.1061/(asce)0733-9372(2009)135:5(317).
El-Temsah, Y. S., Sevcu, A., Bobcikova, K., Cernik, M., & Joner, E. J. (2016). DDT degradation efficiency and ecotoxicological effects of two types of nano-sized zerovalent iron (nZVI) in water and soil. Chemosphere, 144, 2221–2228. https://doi.
org/10.1016/j.chemosphere.2015.10.122.
Evanylo, G. K. (2006). Chapter 10. Land application of biosolids. In K. C. Haering
& G. K. Evanylo (Eds.), The Mid-Atlantic Nutrient Management Handbook (p.27).
Virginia Cooperative Extension, Blacksburg, VA. https://vtechworks.lib.vt.edu/
handle/10919/99502.
Faria, W. M., de Figueiredo, C. C., Coser, T. R., Vale, A. T., & Schneider, B. G. (2018). Is
sewage sludge biochar capable of replacing inorganic fertilizers for corn production? Evidence from a two-year field experiment. Archives of Agronomy and
Soil Science, 64(4), 505–519. https://doi.org/10.1080/03650340.2017.1360488.
George, E. F., Hall, M. A., & Klerk, G.-J. D. (2008). Plant growth regulators I:
Introduction; Auxins, their analogues and inhibitors. In E. F. George, M. A.
Hall, & G.-J. D. Klerk (Eds.), Plant Propagation by Tissue Culture (3rd ed., Vol. 1,
pp. 175–204). Springer, Netherlands. https://doi.org/10.1007/978-1-4020-5005-3_5.
Gonzalez, M., Miglioranza, K. S. B., Aizpún, J. E., Isla, F. I., & Peña, A. (2010). Assessing
pesticide leaching and desorption in soils with different agricultural activities
from Argentina (Pampa and Patagonia). Chemosphere, 81(3), 351–358. https://doi.
org/10.1016/j.chemosphere.2010.07.021.
Heaton, E. A., Dohleman, F. G., Miguez, A. F., Juvik, J. A., Lozovaya, V., Widholm, J.,
Zabotina, O. A., McIsaac, G. F., David, M. B., Voigt, T. B., Boersma, N. N., & Long,
S. P. (2010). Chapter 3: Miscanthus: A promising biomass crop. In J.-C. Kader &
M. Delseny (Eds.), Advances in Botanical Research (Vol. 56, pp. 75–137). Academic
Press, London, UK. https://doi.org/10.1016/B978-0-12-381518-7.00003-0.
Hu, B., Jarosch, A.-M., Gauder, M., Graeff-Hönninger, S., Schnitzler, J.-P., Grote, R.,
Rennenberg, H., & Kreuzwieser, J. (2018). VOC emissions and carbon balance
of two bioenergy plantations in response to nitrogen fertilization: A comparison of Miscanthus and Salix. Environmental Pollution, 237, 205–217. https://doi.
org/10.1016/j.envpol.2018.02.034.
Miscanthus Production
Denyes, M. J., Rutter, A., & Zeeb, B. A. (2013). In situ application of activated carbon and biochar to PCB-contaminated soil and the effects of mixing regime.
Environmental Pollution, 182, 201–208. https://doi.org/10.1016/j.envpol.2013.07.016.
Dong, H., Green, S. V., Nishiwaki, A., Yamada, T., Stewart, J. R., Deuter, M., & Sacks, E.
J. (2019). Winter hardiness of Miscanthus (I): Overwintering ability and yield of
new Miscanthus × giganteus genotypes in Illinois and Arkansas. GCB Bioenergy,
11(5), 691–705. https://doi.org/10.1111/gcbb.12588.
Doronin, V. A., Dryha, V. V., Kravchenko, Y. A., Mykolaiko, V. P., Karpuk, L. M., &
Krasnoshtan, I. V. (2019). Growing of Miscanthus × giganteus planting material
in the conditions of unstable moistening. Eurasian Journal of Biosciences, 13(2),
1101–1108. http://www.ejobios.org/article/growing-of-miscantus-giganteusplanting-material-in-the-conditions-of-unstable-moistening-7231.
Dubis, B., Jankowski, K. J., Załuski, D., & Sokólski, M. (2020). The effect of sewage
sludge fertilization on the biomass yield of giant miscanthus and the energy
balance of the production process. Energy, 206, 118189. https://doi.org/10.1016/j.
energy.2020.118189.
Elliott, D. W., Lien, H.-L., & Zhang, W.-X. (2009). Degradation of lindane by zerovalent iron nanoparticles. Journal of Environmental Engineering, 135(5), 317–324.
https://doi.org/10.1061/(asce)0733-9372(2009)135:5(317).
El-Temsah, Y. S., Sevcu, A., Bobcikova, K., Cernik, M., & Joner, E. J. (2016). DDT degradation efficiency and ecotoxicological effects of two types of nano-sized zerovalent iron (nZVI) in water and soil. Chemosphere, 144, 2221–2228. https://doi.
org/10.1016/j.chemosphere.2015.10.122.
Evanylo, G. K. (2006). Chapter 10. Land application of biosolids. In K. C. Haering
& G. K. Evanylo (Eds.), The Mid-Atlantic Nutrient Management Handbook (p.27).
Virginia Cooperative Extension, Blacksburg, VA. https://vtechworks.lib.vt.edu/
handle/10919/99502.
Faria, W. M., de Figueiredo, C. C., Coser, T. R., Vale, A. T., & Schneider, B. G. (2018). Is
sewage sludge biochar capable of replacing inorganic fertilizers for corn production? Evidence from a two-year field experiment. Archives of Agronomy and
Soil Science, 64(4), 505–519. https://doi.org/10.1080/03650340.2017.1360488.
George, E. F., Hall, M. A., & Klerk, G.-J. D. (2008). Plant growth regulators I:
Introduction; Auxins, their analogues and inhibitors. In E. F. George, M. A.
Hall, & G.-J. D. Klerk (Eds.), Plant Propagation by Tissue Culture (3rd ed., Vol. 1,
pp. 175–204). Springer, Netherlands. https://doi.org/10.1007/978-1-4020-5005-3_5.
Gonzalez, M., Miglioranza, K. S. B., Aizpún, J. E., Isla, F. I., & Peña, A. (2010). Assessing
pesticide leaching and desorption in soils with different agricultural activities
from Argentina (Pampa and Patagonia). Chemosphere, 81(3), 351–358. https://doi.
org/10.1016/j.chemosphere.2010.07.021.
Heaton, E. A., Dohleman, F. G., Miguez, A. F., Juvik, J. A., Lozovaya, V., Widholm, J.,
Zabotina, O. A., McIsaac, G. F., David, M. B., Voigt, T. B., Boersma, N. N., & Long,
S. P. (2010). Chapter 3: Miscanthus: A promising biomass crop. In J.-C. Kader &
M. Delseny (Eds.), Advances in Botanical Research (Vol. 56, pp. 75–137). Academic
Press, London, UK. https://doi.org/10.1016/B978-0-12-381518-7.00003-0.
Hu, B., Jarosch, A.-M., Gauder, M., Graeff-Hönninger, S., Schnitzler, J.-P., Grote, R.,
Rennenberg, H., & Kreuzwieser, J. (2018). VOC emissions and carbon balance
of two bioenergy plantations in response to nitrogen fertilization: A comparison of Miscanthus and Salix. Environmental Pollution, 237, 205–217. https://doi.
org/10.1016/j.envpol.2018.02.034.
