110
Phytotechnology with Biomass Production
Hülster, A., & Marschner, H. (1995). PCDD/PCDF-complexing compounds in zucchini. Organohalogen Compounds, 24, 493–496.
Humentik, M., Radejko, B., Fuchilo, Ya., Sinchenko, V., Ganzhenko, O., Bondar,
V., Fursa, A., Kvak, V., Kharitonov, M., & Katelevskyi, V. (2018). Production of
Bioenergy Crops (M. Humentik, Ed.). Komprint.
Inui, H., Sawada, M., Goto, J., Yamazaki, K., Kodama, N., Tsuruta, H., & Eun, H. (2013).
A major latex-like protein is a key factor in crop contamination by persistent
organic pollutants. Plant Physiology, 161(4), 2128–2135. https://doi.org/10.1104/
pp.112.213645.
Iqbal, Y., Kiesel, A., Wagner, M., Nunn, C., Kalinina, O., Hastings, A. F. S. J., CliftonBrown, J. C., & Lewandowski, I. (2017). Harvest time optimization for combustion quality of different Miscanthus genotypes across Europe. Frontiers in Plant
Science, 8, 727. https://doi.org/10.3389/fpls.2017.00727.
Israr, M., Jewell, A., Kumar, D., & Sahi, S. V. (2011). Interactive effects of lead, copper, nickel and zinc on growth, metal uptake and antioxidative metabolism of
Sesbania drummondii. Journal of Hazardous Materials, 186(2), 1520–1526. https://
doi.org/10.1016/j.jhazmat.2010.12.021.
Jeżowski, S., Mos, M., Buckby, S., Cerazy-Waliszewska, J., Owczarzak, W., Mocek,
A., Kaczmarek, Z., & McCalmont, J. P. (2017). Establishment, growth, and yield
potential of the perennial grass Miscanthus × giganteus on degraded coal mine
soils. Frontiers in Plant Science, 8, 726. https://doi.org/10.3389/fpls.2017.00726.
Kabata-Pendias, A., & Pendias, H. (2001). Trace Elements in Soils and Plants (3rd ed.).
CRC Press, Boca Raton, FL.
Kaiser, C. M., & Sacks, E. J. (2015). Cold-tolerance of Miscanthus seedlings and effects
of spring and autumn frosts on mature clonally replicated cultivars. Crop
Science, 55(5), 2401–2416. https://doi.org/10.2135/cropsci2014.10.0679.
Kalinina, O., Nunn, C., Sanderson, R., Hastings, A. F. S., van der Weijde, T., Özgüven,
M., Tarakanov, I., Schüle, H., Trindade, L. M., Dolstra, O., Schwarz, K.-U., Iqbal,
Y., Kiesel, A., Mos, M., Lewandowski, I., & Clifton-Brown, J. C. (2017). Extending
Miscanthus cultivation with novel germplasm at six contrasting sites. Frontiers
in Plant Science, 8, 563. https://doi.org/10.3389/fpls.2017.00563.
Kansas Corn Yield Contest Winners. (2019). https://kscorn.com/yield-2/.
Kering, M. K., Butler, T. J., Biermacher, J. T., & Guretzky, J. A. (2012). Biomass yield
and nutrient removal rates of perennial grasses under nitrogen fertilization.
BioEnergy Research, 5(1), 61–70. https://doi.org/10.1007/s12155-011-9167-x.
Kharytonov, M., Pidlisnyuk, V., Stefanovska, T., Babenko, M., Martynova, N., & Rula,
I. (2019). The estimation of Miscanthus × giganteus’ adaptive potential for cultivation on the mining and post-mining lands in Ukraine. Environmental Science and
Pollution Research, 26(3), 2974–2986.
Kirchmann, H., Börjesson, G., Kätterer, T., & Cohen, Y. (2017). From agricultural use
of sewage sludge to nutrient extraction: A soil science outlook. Ambio, 46(2),
143–154. https://doi.org/10.1007/s13280-016-0816-3.
Kołodziej, B., Antonkiewicz, J., & Sugier, D. (2016). Miscanthus × giganteus as a biomass
feedstock grown on municipal sewage sludge. Industrial Crops and Products, 81,
72–82. https://doi.org/10.1016/j.indcrop.2015.11.052.
Korenblum, E., Dong, Y., Szymanski, J., Panda, S., Jozwiak, A., Massalha, H., Meir, S.,
Rogachev, I., & Aharoni, A. (2020). Rhizosphere microbiome mediates systemic
root metabolite exudation by root-to-root signaling. Proceedings of the National
Academy of Sciences, 117(7), 3874–3883. https://doi.org/10.1073/pnas.1912130117.
Phytotechnology with Biomass Production
Hülster, A., & Marschner, H. (1995). PCDD/PCDF-complexing compounds in zucchini. Organohalogen Compounds, 24, 493–496.
Humentik, M., Radejko, B., Fuchilo, Ya., Sinchenko, V., Ganzhenko, O., Bondar,
V., Fursa, A., Kvak, V., Kharitonov, M., & Katelevskyi, V. (2018). Production of
Bioenergy Crops (M. Humentik, Ed.). Komprint.
Inui, H., Sawada, M., Goto, J., Yamazaki, K., Kodama, N., Tsuruta, H., & Eun, H. (2013).
A major latex-like protein is a key factor in crop contamination by persistent
organic pollutants. Plant Physiology, 161(4), 2128–2135. https://doi.org/10.1104/
pp.112.213645.
Iqbal, Y., Kiesel, A., Wagner, M., Nunn, C., Kalinina, O., Hastings, A. F. S. J., CliftonBrown, J. C., & Lewandowski, I. (2017). Harvest time optimization for combustion quality of different Miscanthus genotypes across Europe. Frontiers in Plant
Science, 8, 727. https://doi.org/10.3389/fpls.2017.00727.
Israr, M., Jewell, A., Kumar, D., & Sahi, S. V. (2011). Interactive effects of lead, copper, nickel and zinc on growth, metal uptake and antioxidative metabolism of
Sesbania drummondii. Journal of Hazardous Materials, 186(2), 1520–1526. https://
doi.org/10.1016/j.jhazmat.2010.12.021.
Jeżowski, S., Mos, M., Buckby, S., Cerazy-Waliszewska, J., Owczarzak, W., Mocek,
A., Kaczmarek, Z., & McCalmont, J. P. (2017). Establishment, growth, and yield
potential of the perennial grass Miscanthus × giganteus on degraded coal mine
soils. Frontiers in Plant Science, 8, 726. https://doi.org/10.3389/fpls.2017.00726.
Kabata-Pendias, A., & Pendias, H. (2001). Trace Elements in Soils and Plants (3rd ed.).
CRC Press, Boca Raton, FL.
Kaiser, C. M., & Sacks, E. J. (2015). Cold-tolerance of Miscanthus seedlings and effects
of spring and autumn frosts on mature clonally replicated cultivars. Crop
Science, 55(5), 2401–2416. https://doi.org/10.2135/cropsci2014.10.0679.
Kalinina, O., Nunn, C., Sanderson, R., Hastings, A. F. S., van der Weijde, T., Özgüven,
M., Tarakanov, I., Schüle, H., Trindade, L. M., Dolstra, O., Schwarz, K.-U., Iqbal,
Y., Kiesel, A., Mos, M., Lewandowski, I., & Clifton-Brown, J. C. (2017). Extending
Miscanthus cultivation with novel germplasm at six contrasting sites. Frontiers
in Plant Science, 8, 563. https://doi.org/10.3389/fpls.2017.00563.
Kansas Corn Yield Contest Winners. (2019). https://kscorn.com/yield-2/.
Kering, M. K., Butler, T. J., Biermacher, J. T., & Guretzky, J. A. (2012). Biomass yield
and nutrient removal rates of perennial grasses under nitrogen fertilization.
BioEnergy Research, 5(1), 61–70. https://doi.org/10.1007/s12155-011-9167-x.
Kharytonov, M., Pidlisnyuk, V., Stefanovska, T., Babenko, M., Martynova, N., & Rula,
I. (2019). The estimation of Miscanthus × giganteus’ adaptive potential for cultivation on the mining and post-mining lands in Ukraine. Environmental Science and
Pollution Research, 26(3), 2974–2986.
Kirchmann, H., Börjesson, G., Kätterer, T., & Cohen, Y. (2017). From agricultural use
of sewage sludge to nutrient extraction: A soil science outlook. Ambio, 46(2),
143–154. https://doi.org/10.1007/s13280-016-0816-3.
Kołodziej, B., Antonkiewicz, J., & Sugier, D. (2016). Miscanthus × giganteus as a biomass
feedstock grown on municipal sewage sludge. Industrial Crops and Products, 81,
72–82. https://doi.org/10.1016/j.indcrop.2015.11.052.
Korenblum, E., Dong, Y., Szymanski, J., Panda, S., Jozwiak, A., Massalha, H., Meir, S.,
Rogachev, I., & Aharoni, A. (2020). Rhizosphere microbiome mediates systemic
root metabolite exudation by root-to-root signaling. Proceedings of the National
Academy of Sciences, 117(7), 3874–3883. https://doi.org/10.1073/pnas.1912130117.
