111
Miscanthus Production
Kucharik, C. J., VanLoocke, A., Lenters, J. D., & Motew, M. M. (2013). Miscanthus establishment and overwintering in the midwest USA: A regional modeling study
of crop residue management on critical minimum soil temperatures. PLoS One,
8(7), e68847. https://doi.org/10.1371/journal.pone.0068847.
Kucharski, R., Sas-Nowosielska, A., Małkowski, E., Japenga, J., Kuperberg, J. M.,
Pogrzeba, M., & Krzyżak, J. (2005). The use of indigenous plant species and calcium phosphate for the stabilization of highly metal-polluted sites in southern
Poland. Plant and Soil, 273(1), 291–305. https://doi.org/10.1007/s11104-004-8068-6.
Lee, D. K., Aberle, E., Anderson, E. K., and 55 others (2018). Biomass production of herbaceous energy crops in the United States: Field trial results and yield potential
maps from the multiyear regional feedstock partnership. GCB Bioenergy, 10(10),
698–716. https://doi.org/10.1111/gcbb.12493.
Lee, M.-S., Wycislo, A., Guo, J., Lee, D. K., & Voigt, T. (2017). Nitrogen fertilization
effects on biomass production and yield components of Miscanthus × giganteus.
Frontiers in Plant Science, 8, 544. https://doi.org/10.3389/fpls.2017.00544.
Lehmann, J., Gaunt, J., & Rondon, M. (2006). Bio-char sequestration in terrestrial ecosystems – A review. Mitigation and Adaptation Strategies for Global Change, 11(2),
403–427. https://doi.org/10.1007/s11027-005-9006-5.
Lehmann, J., Pereira da Silva, J., Steiner, C., Nehls, T., Zech, W., & Glaser, B. (2003).
Nutrient availability and leaching in an archaeological Anthrosol and a
Ferralsol of the Central Amazon basin: Fertilizer, manure and charcoal amendments. Plant and Soil, 249(2), 343–357. https://doi.org/10.1023/a:1022833116184.
Liphadzi, M. S., Kirkham, M. B., & Paulsen, G. M. (2006). Auxin-enhanced root growth
for phytoremediation of sewage-sludge amended soil. Environmental Technology,
27(6), 695–704. https://doi.org/10.1080/09593332708618683.
Mamirova, A., Pidlisnyuk, V., Amirbekov, A., Ševců, A., Nurzhanova, A. (2020).
Phytoremediation potential of Miscanthus sinensis And. in organochlorine pesticides contaminated soil amended by Tween 20 and Activated carbon. Environmental
Science and Pollution Research. https://doi.org/10.1007/s11356-020-11609-y.
Mantineo, M., D’Agosta, G. M., Copani, V., Patanè, C., & Cosentino, S. L. (2009).
Biomass yield and energy balance of three perennial crops for energy use in
the semi-arid Mediterranean environment. Field Crops Research, 114(2), 204–213.
https://doi.org/10.1016/j.fcr.2009.07.020.
Matsuoka, S., Kennedy, A. J., dos Santos, E. G. D., Tomazela, A. L., & Rubio, L. C. S.
(2014). Energy cane: Its concept, development, characteristics, and prospects.
Advances in Botany, 2014, 597275. https://doi.org/10.1155/2014/597275.
Maughan, M., Bollero, G., Lee, D. K., Darmody, R., Bonos, S., Cortese, L., Murphy,
J., Gaussoin, R., Sousek, M., Williams, D., Williams, L., Miguez, F., & Voigt,
T. (2012). Miscanthus × giganteus productivity: The effects of management in different environments. GCB Bioenergy, 4(3), 253–265. https://doi.
org/10.1111/j.1757-1707.2011.01144.x.
Mitros, T., Session, A. M., James, B. T., Wu, G. A., Belaffif, M. B., Clark, L. V., Shu, S.,
Dong, H., Barling, A., Holmes, J. R., Mattick, J. E., Bredeson, J. V., Liu, S., Farrar,
K., Głowacka, K., Jeżowski, S., Barry, K., Chae, W. B., Juvik, J. A., … Rokhsar, D. S.
(2020). Genome biology of the paleotetraploid perennial biomass crop Miscanthus.
Nature Communications, 11(1), 5442. https://doi.org/10.1038/s41467-020-18923-6.
Moberly Monitor. (2017). Miscanthus offers Missouri farmers use for marginal land. https://
www.moberlymonitor.com/news/20170502/Miscanthus-offers-missourifarmers-use-for-marginal-land.
Miscanthus Production
Kucharik, C. J., VanLoocke, A., Lenters, J. D., & Motew, M. M. (2013). Miscanthus establishment and overwintering in the midwest USA: A regional modeling study
of crop residue management on critical minimum soil temperatures. PLoS One,
8(7), e68847. https://doi.org/10.1371/journal.pone.0068847.
Kucharski, R., Sas-Nowosielska, A., Małkowski, E., Japenga, J., Kuperberg, J. M.,
Pogrzeba, M., & Krzyżak, J. (2005). The use of indigenous plant species and calcium phosphate for the stabilization of highly metal-polluted sites in southern
Poland. Plant and Soil, 273(1), 291–305. https://doi.org/10.1007/s11104-004-8068-6.
Lee, D. K., Aberle, E., Anderson, E. K., and 55 others (2018). Biomass production of herbaceous energy crops in the United States: Field trial results and yield potential
maps from the multiyear regional feedstock partnership. GCB Bioenergy, 10(10),
698–716. https://doi.org/10.1111/gcbb.12493.
Lee, M.-S., Wycislo, A., Guo, J., Lee, D. K., & Voigt, T. (2017). Nitrogen fertilization
effects on biomass production and yield components of Miscanthus × giganteus.
Frontiers in Plant Science, 8, 544. https://doi.org/10.3389/fpls.2017.00544.
Lehmann, J., Gaunt, J., & Rondon, M. (2006). Bio-char sequestration in terrestrial ecosystems – A review. Mitigation and Adaptation Strategies for Global Change, 11(2),
403–427. https://doi.org/10.1007/s11027-005-9006-5.
Lehmann, J., Pereira da Silva, J., Steiner, C., Nehls, T., Zech, W., & Glaser, B. (2003).
Nutrient availability and leaching in an archaeological Anthrosol and a
Ferralsol of the Central Amazon basin: Fertilizer, manure and charcoal amendments. Plant and Soil, 249(2), 343–357. https://doi.org/10.1023/a:1022833116184.
Liphadzi, M. S., Kirkham, M. B., & Paulsen, G. M. (2006). Auxin-enhanced root growth
for phytoremediation of sewage-sludge amended soil. Environmental Technology,
27(6), 695–704. https://doi.org/10.1080/09593332708618683.
Mamirova, A., Pidlisnyuk, V., Amirbekov, A., Ševců, A., Nurzhanova, A. (2020).
Phytoremediation potential of Miscanthus sinensis And. in organochlorine pesticides contaminated soil amended by Tween 20 and Activated carbon. Environmental
Science and Pollution Research. https://doi.org/10.1007/s11356-020-11609-y.
Mantineo, M., D’Agosta, G. M., Copani, V., Patanè, C., & Cosentino, S. L. (2009).
Biomass yield and energy balance of three perennial crops for energy use in
the semi-arid Mediterranean environment. Field Crops Research, 114(2), 204–213.
https://doi.org/10.1016/j.fcr.2009.07.020.
Matsuoka, S., Kennedy, A. J., dos Santos, E. G. D., Tomazela, A. L., & Rubio, L. C. S.
(2014). Energy cane: Its concept, development, characteristics, and prospects.
Advances in Botany, 2014, 597275. https://doi.org/10.1155/2014/597275.
Maughan, M., Bollero, G., Lee, D. K., Darmody, R., Bonos, S., Cortese, L., Murphy,
J., Gaussoin, R., Sousek, M., Williams, D., Williams, L., Miguez, F., & Voigt,
T. (2012). Miscanthus × giganteus productivity: The effects of management in different environments. GCB Bioenergy, 4(3), 253–265. https://doi.
org/10.1111/j.1757-1707.2011.01144.x.
Mitros, T., Session, A. M., James, B. T., Wu, G. A., Belaffif, M. B., Clark, L. V., Shu, S.,
Dong, H., Barling, A., Holmes, J. R., Mattick, J. E., Bredeson, J. V., Liu, S., Farrar,
K., Głowacka, K., Jeżowski, S., Barry, K., Chae, W. B., Juvik, J. A., … Rokhsar, D. S.
(2020). Genome biology of the paleotetraploid perennial biomass crop Miscanthus.
Nature Communications, 11(1), 5442. https://doi.org/10.1038/s41467-020-18923-6.
Moberly Monitor. (2017). Miscanthus offers Missouri farmers use for marginal land. https://
www.moberlymonitor.com/news/20170502/Miscanthus-offers-missourifarmers-use-for-marginal-land.
