54
Phytotechnology with Biomass Production
Arslan, M., Imran, A., Khan, Q. M., & Afzal, M. (2017). Plant–bacteria partnerships for the remediation of persistent organic pollutants. Environmental
Science and Pollution Research, 24(5), 4322–4336. https://doi.org/10.1007/
s11356-015-4935-3.
Asquer, C., Melis, E., Scano, E. A., & Carboni, G. (2019). Opportunities for green
energy through emerging crops: Biogas valorization of Cannabis sativa L. residues. Climate, 7(12), 142. https://doi.org/10.3390/cli7120142.
Becerra-Castro, C., Prieto-Fernández, Á., Kidd, P. S., Weyens, N., Rodríguez-Garrido,
B., Touceda-González, M., Acea, M. J., & Vangronsveld, J. (2013). Improving
performance of Cytisus striatus on substrates contaminated with hexachlorocyclohexane (HCH) isomers using bacterial inoculants: Developing a phytoremediation strategy. Plant and Soil, 362(1–2), 247–260. https://doi.org/10.1007/
s11104-012-1276-6.
Beesley, L., Moreno-Jiménez, E., Gomez-Eyles, J. L., Harris, E., Robinson, B., & Sizmur,
T. (2011). A review of biochars’ potential role in the remediation, revegetation
and restoration of contaminated soils. Environmental Pollution, 159(12), 3269–
3282. https://doi.org/10.1016/j.envpol.2011.07.023.
Bilalis, D., Karidogianni, S., Roussis, I., Kouneli, V., Kakabouki, I., & Folina, A. (2019).
Cannabis sativa L.: A new promising crop for medical and industrial use.
Bulletin of University of Agricultural Sciences and Veterinary Medicine Cluj-Napoca.
Horticulture, 76(2), 145. https://doi.org/10.15835/buasvmcn-hort:2019.0020.
Cachada, A., Ferreira da Silva, E., Duarte, A. C., & Pereira, R. (2016). Risk assessment of urban soils contamination: The particular case of polycyclic aromatic
hydrocarbons. Science of the Total Environment, 551–552, 271–284. https://doi.
org/10.1016/j.scitotenv.2016.02.012.
Campanella, B. E., Bock, C., & Schröder, P. (2002). Phytoremediation to increase the
degradation of PCBs and PCDD/Fs: Potential and limitations. Environmental
Science and Pollution Research, 9(1), 73–85. https://doi.org/10.1007/bf02987318.
Campbell, S., Paquin, D., Awaya, J. D., & Li, Q. X. (2002). Remediation of benzo[a]
pyrene and chrysene-contaminated soil with industrial hemp (Cannabis
sativa). International Journal of Phytoremediation, 4(2), 157–168. https://doi.
org/10.1080/15226510208500080.
Canadian Council Ministers Environments. (2008). Canada-wide standards for
petroleum hydrocarbons (PHC) in soil. https://www.ccme.ca/en/resources/
contaminated_site_management/phc_cws_in_soil.html
Chan-Quijano, J. G., Cach-Perez, M. J., & Rodriguez-Robles, U. (2020). Phytoremediation
of soils contaminated by hydrocarbon. In: Shmaefsky, B. R. ed. Phytoremediation,
Concepts and Strategies in Plant Sciences, Springer, New York, 83–101.
Chekol, T., Vough, L. R., & Chaney, R. L. (2004). Phytoremediation of polychlorinated
biphenyl-contaminated soils: The rhizosphere effect. Environment International,
30(6), 799–804. https://doi.org/10.1016/j.envint.2004.01.008.
Chlebek, D., & Hupert-Kocurek, K. (2019). Endophytic bacteria in the phytodegradation of persistent organic pollutants. Advancements of Microbiology, 58(1), 70–79.
https://doi.org/10.21307/PM-2019.58.1.070
Crommentuijn, T., Sijm, D., De Bruijn, J., Van Leeuwen, K., & Van de Plassche, E.
(2000). Maximum permissible and negligible concentrations for some organic
substances and pesticides. Journal of Environmental Management, 58(4), 297–312.
https://doi.org/10.1006/jema.2000.0334.
Phytotechnology with Biomass Production
Arslan, M., Imran, A., Khan, Q. M., & Afzal, M. (2017). Plant–bacteria partnerships for the remediation of persistent organic pollutants. Environmental
Science and Pollution Research, 24(5), 4322–4336. https://doi.org/10.1007/
s11356-015-4935-3.
Asquer, C., Melis, E., Scano, E. A., & Carboni, G. (2019). Opportunities for green
energy through emerging crops: Biogas valorization of Cannabis sativa L. residues. Climate, 7(12), 142. https://doi.org/10.3390/cli7120142.
Becerra-Castro, C., Prieto-Fernández, Á., Kidd, P. S., Weyens, N., Rodríguez-Garrido,
B., Touceda-González, M., Acea, M. J., & Vangronsveld, J. (2013). Improving
performance of Cytisus striatus on substrates contaminated with hexachlorocyclohexane (HCH) isomers using bacterial inoculants: Developing a phytoremediation strategy. Plant and Soil, 362(1–2), 247–260. https://doi.org/10.1007/
s11104-012-1276-6.
Beesley, L., Moreno-Jiménez, E., Gomez-Eyles, J. L., Harris, E., Robinson, B., & Sizmur,
T. (2011). A review of biochars’ potential role in the remediation, revegetation
and restoration of contaminated soils. Environmental Pollution, 159(12), 3269–
3282. https://doi.org/10.1016/j.envpol.2011.07.023.
Bilalis, D., Karidogianni, S., Roussis, I., Kouneli, V., Kakabouki, I., & Folina, A. (2019).
Cannabis sativa L.: A new promising crop for medical and industrial use.
Bulletin of University of Agricultural Sciences and Veterinary Medicine Cluj-Napoca.
Horticulture, 76(2), 145. https://doi.org/10.15835/buasvmcn-hort:2019.0020.
Cachada, A., Ferreira da Silva, E., Duarte, A. C., & Pereira, R. (2016). Risk assessment of urban soils contamination: The particular case of polycyclic aromatic
hydrocarbons. Science of the Total Environment, 551–552, 271–284. https://doi.
org/10.1016/j.scitotenv.2016.02.012.
Campanella, B. E., Bock, C., & Schröder, P. (2002). Phytoremediation to increase the
degradation of PCBs and PCDD/Fs: Potential and limitations. Environmental
Science and Pollution Research, 9(1), 73–85. https://doi.org/10.1007/bf02987318.
Campbell, S., Paquin, D., Awaya, J. D., & Li, Q. X. (2002). Remediation of benzo[a]
pyrene and chrysene-contaminated soil with industrial hemp (Cannabis
sativa). International Journal of Phytoremediation, 4(2), 157–168. https://doi.
org/10.1080/15226510208500080.
Canadian Council Ministers Environments. (2008). Canada-wide standards for
petroleum hydrocarbons (PHC) in soil. https://www.ccme.ca/en/resources/
contaminated_site_management/phc_cws_in_soil.html
Chan-Quijano, J. G., Cach-Perez, M. J., & Rodriguez-Robles, U. (2020). Phytoremediation
of soils contaminated by hydrocarbon. In: Shmaefsky, B. R. ed. Phytoremediation,
Concepts and Strategies in Plant Sciences, Springer, New York, 83–101.
Chekol, T., Vough, L. R., & Chaney, R. L. (2004). Phytoremediation of polychlorinated
biphenyl-contaminated soils: The rhizosphere effect. Environment International,
30(6), 799–804. https://doi.org/10.1016/j.envint.2004.01.008.
Chlebek, D., & Hupert-Kocurek, K. (2019). Endophytic bacteria in the phytodegradation of persistent organic pollutants. Advancements of Microbiology, 58(1), 70–79.
https://doi.org/10.21307/PM-2019.58.1.070
Crommentuijn, T., Sijm, D., De Bruijn, J., Van Leeuwen, K., & Van de Plassche, E.
(2000). Maximum permissible and negligible concentrations for some organic
substances and pesticides. Journal of Environmental Management, 58(4), 297–312.
https://doi.org/10.1006/jema.2000.0334.
