Assessment of Sunflower (<i>Helianthus annuus</i> L.) for Phytoremediation of Heavy Metal Polluted Mine Tailings—A Case Study of Nampundwe Mine Tailings Dam, Zambia — Oak Academic Publishing
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Assessment of Sunflower (<i>Helianthus annuus</i> L.) for Phytoremediation of Heavy Metal Polluted Mine Tailings—A Case Study of Nampundwe Mine Tailings Dam, Zambia
Department of Metallurgical Engineering, School of Mines, University of Zambia, Lusaka, Zambia
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Department of Metallurgical Engineering, School of Mines, University of Zambia, Lusaka, Zambia
1 Department of Metallurgical Engineering, School of Mines, University of Zambia, Lusaka, Zambia
2 Department of Metallurgical Engineering, School of Mines, University of Zambia, Lusaka, Zambia
Mining activities have led to a generation of large quantities of heavy metals laden wastes which are released into the environment in an unsustainable way causing the contamination of the ecosystems and posing a risk to human health. Most mining companies have not employed any rehabilitation or remediation program of the heavy metal laden waste. The aim of this study was to assess the potential of sunflower for phytoremediation of heavy metal polluted mine tailings. Phytoremediation is an emerging technology in the remediation of mine tailings that uses tolerant plant species to clean up contaminated sites. It uses plants with high biomass and sunflower has been identified as such. These plants can extract, transfer, sequester and stabilize a variety of metals through mechanisms such as phytoextraction, phytostabilization, phytoaccumulation and phytovolatilization. Pot experiments were conducted by growing sunflower ( Helianthus annuus L.) in pyrite mine tailings and in agricultural soil as a control. The study showed that the concentration of Cu reduced from 40.76 mg/kg to 36.59 mg/kg, Zn reduced from 3.58 mg/kg to 3.49 mg/kg and Fe reduced from 23.70 mg/kg to 10 mg/kg respectively in the mine tailings after 6 weeks. Analysis of harvested sunflower (roots, stems, leaves) showed that sunflower could remove heavy metals from the tailings and the highest removal efficiency was 53.7% and the highest translocation factor was 0.25. It was concluded that sunflower has the potential to remediate contaminated mine tailings and that phytoremediation is a viable and efficient technology to treat soils contaminated with heavy metals.
Rungwa, S., Arpa, G., Sakulas, H., Harakuwe, A., et al. (2013) Phytoremediation—An Eco-Friendly and Sustainable Method of Heavy Metal Removal from Closed Mine Environments in Papua New Guinea. Procedia Earth and Planetary Science, 6, 269-277. https://doi.org/10.1016/j.proeps.2013.01.036
Khalid, S., Shahid, M., Niazi, N.K., Murtaza, B., et al. (2017) A Comparison of Technologies for Remediation of Heavy Metal Contaminated Soils. Journal of Geochemical Exploration, 182, 247-268. https://doi.org/10.1016/j.gexplo.2016.11.021
Zehra, A., Sahito, Z.A., Tong, W., Tang, L., et al. (2020) Assessment of Sunflower Germplasm for Phytoremediation of Lead-Polluted Soil and Production of Seed Oil and Seed Meal for Human and Animal Consumption. Journal of Environmental Sciences (China), 87, 24-38. https://doi.org/10.1016/j.jes.2019.05.031
Mbewe, G., Mutondo, M., Maseka, K. and Sichilongo, K. (2016) Assessment of Heavy-Metal Pollution in Sediments and Tilapia Fish Species in Kafue River of Zambia. Archives of Environmental Contamination and Toxicology, 71, 383-393. https://doi.org/10.1007/s00244-016-0295-3
Fellet, G., Marchiol, L., Perosa, D. and Zerbi, G. (2007) The Application of Phytoremediation Technology in a Soil Contaminated by Pyrite Cinders. Ecological Engineering, 31, 207-214. https://doi.org/10.1016/j.ecoleng.2007.06.011
Ntengwe, F.W. (2006) Pollutant Loads and Water Quality in Streams of Heavily Populated and Industrialised Towns. Physics and Chemistry of the Earth, 31, 832-839. https://doi.org/10.1016/j.pce.2006.08.025
Masaka, J., Mutambu, M., Mhindu, R. and Muringaniza, K. (2017) Pyritic Metals Sequestration on Mine Dumps Treated with Oyster Mushroom (Pleurotus ostreatus, Jacq.et Fr.). Chemical and Biological Technologies in Agriculture, 4, Article No. 26. https://doi.org/10.1186/s40538-017-0108-6
Li, C., Zhou, K., Qin, W., Tian, C., et al. (2019) A Review on Heavy Metals Contamination in Soil: Effects, Sources, and Remediation Techniques. Soil and Sediment Contamination, 28, 380-394. https://doi.org/10.1080/15320383.2019.1592108
Huang, X., Zhao, F., Yu, G., Song, C., et al. (2017) Removal of Cu, Zn, Pb, and Cr from Yangtze Estuary Using the Phragmites australis Artificial Floating Wetlands. BioMed Research International, 2017, Article ID: 6201048. https://doi.org/10.1155/2017/6201048
Bhargava, A., Carmona, F.F., Bhargava, M. and Srivastava, S. (2012) Approaches for Enhanced Phytoextraction of Heavy Metals. Journal of Environmental Management, 105, 103-120. https://doi.org/10.1016/j.jenvman.2012.04.002
Ullah, A., Heng, S., Munis, M.F.H., Fahad, S., et al. (2015) Phytoremediation of Heavy Metals Assisted by Plant Growth Promoting (PGP) Bacteria: A Review. Environmental and Experimental Botany, 117, 28-40. https://doi.org/10.1016/j.envexpbot.2015.05.001
Anyinkeng, N., Neba, G.A., Mih, A.M. and Tening, A.S. (2020) Phytoremediation Potential of Some Macrophytes from a Car Wash Stream in Buea, South Western Cameroon. Journal of Environmental Protection, 11, 1052-1063. https://doi.org/10.4236/jep.2020.1112066
Song, Y., Kirkwood, N., Maksimović, Č., Zhen, X., et al. (2019) Nature Based Solutions for Contaminated Land Remediation and Brownfield Redevelopment in Cities: A Review. Science of the Total Environment, 663, 568-579. https://doi.org/10.1016/j.scitotenv.2019.01.347
Adesodun, J.K., Atayese, M.O., Agbaje, T.A., Osadiaye, B.A., et al. (2010) Phytoremediation Potentials of Sunflowers (Tithonia diversifolia and Helianthus annuus) for Metals in Soils Contaminated with Zinc and Lead Nitrates. Water, Air, and Soil Pollution, 207, 195-201. https://doi.org/10.1007/s11270-009-0128-3
Materac, M., Wyrwicka, A. and Sobiecka, E. (2015) Phytoremediation Techniques in Wastewater Treatment. Environmental Biotechnology, 11, 10-13. https://doi.org/10.14799/ebms249
Lasat, M.M. (1999) Phytoextraction of Metals from Contaminated Soil: A Review of Plant/Soil/Metal Interaction and Assessment of Pertinent Agronomic Issues. Journal of Hazardous Substance Research, 2, Article No. 5. https://doi.org/10.4148/1090-7025.1015
Jadia, C.D. and Fulekar, M.H. (2008) Phytoremediation: The Application of Vermicompost to Remove Zinc, Cadmium, Copper, Nickel and Lead by Sunflower Plant. Environmental Engineering and Management Journal, 7, 547-558. https://doi.org/10.30638/eemj.2008.078
Rizwan, M., Ali, S., Rizvi, H., Rinklebe, J., et al. (2016) Phytomanagement of Heavy Metals in Contaminated Soils Using Sunflower: A Review. Critical Reviews in Environmental Science and Technology, 46, 1498-1528. https://doi.org/10.1080/10643389.2016.1248199
Moussa, M., Esaïe, F. and Sanda, M. (2022) Pollination Efficiency of Ceratina cyanea (Hymenoptera: Apidae) on Helianthus annuus (Asteraceae) Flowers at Dang (Ngaoundere, Cameroon). Open Journal of Ecology, 12, 66-80. https://doi.org/10.4236/oje.2022.121004
Zadeh, B.M., Savaghebi-firozabadi, G.R., Alikhani, H.A. and Hosseini, H.M. (2008) Effect of Sunflower and Amaranthus Culture and Application of Inoculants on Phytoremediation of the Soils Contaminated with Cadmium. American-Eurasian Journal of Agricultural & Environmental Sciences, 4, 93-103.
Ikenaka, Y., Nakayama, S.M.M., Muzandu, K., Choongo, K., et al. (2014) Heavy Metal Contamination of Soil and Sediment in Zambia. Heavy Metal Contamination of Water and Soil: Analysis, Assessment, and Remediation Strategies, 4, 109-128.
Vangronsveld, J., Herzig, R., Weyens, N., Boulet, J., et al. (2009) Phytoremediation of Contaminated Soils and Groundwater: Lessons from the Field. Environmental Science and Pollution Research, 16, 765-794. https://doi.org/10.1007/s11356-009-0213-6
Forte, J. and Mutiti, S. (2017) Phytoremediation Potential of Helianthus annuus and Hydrangea paniculata in Copper and Lead-Contaminated Soil. Water, Air, and Soil Pollution, 228, Article No. 77. https://doi.org/10.1007/s11270-017-3249-0
Mahardika, G., Rinanti, A. and Fachrul, M.F. (2018) Phytoremediation of Heavy Metal Copper (Cu2+) by Sunflower (Helianthus annuus L.). IOP Conference Series: Earth and Environmental Science, 106, Article ID: 012120. https://doi.org/10.1088/1755-1315/106/1/012120
Doncheva, S., Moustakas, M., Ananieva, K., Chavdarova, M., et al. (2013) Plant Response to Lead in the Presence or Absence EDTA in Two Sunflower Genotypes (Cultivated H. annuus cv. 1114 and Interspecific Line H. annuus × H. argophyllus). Environmental Science and Pollution Research, 20, 823-833. https://doi.org/10.1007/s11356-012-1274-5
Bani, A., Osmani, M. and Hoxha, B. (2015) Heavy Metals and Ni Phytoextractionin in the Metallurgical Area Soils in Elbasan. The Albanian Journal of Agricultural Sciences, 14, 414-419. https://www.researchgate.net/publication/304347101
Rahman, M.M., Azirun, S.M. and Boyce, A.N. (2013) Enhanced Accumulation of Copper and Lead in Amaranth (Amaranthus paniculatus), Indian Mustard (Brassica juncea) and Sunflower (Helianthus annuus). PLOS ONE, 8, e62941. https://doi.org/10.1371/journal.pone.0062941
Liduino, V.S., Servulo, E.F.C. and Oliveira, F.J.S. (2018) Biosurfactant-Assisted Phytoremediation of Multi-Contaminated Industrial Soil Using Sunflower (Helianthus annuus L.). Journal of Environmental Science and Health—Part A Toxic/Hazardous Substances and Environmental Engineering, 53, 609-616. https://doi.org/10.1080/10934529.2018.1429726
Emmanuel, F. (2017) Phytoremediation Potentials of Sunflower (Helianthus annuus L.) Asteraceae on Contaminated Soils of Abandoned Dumpsites. International Journal of Scientific and Engineering Research, 8, 1751-1757.
Wang, L., Ji, B., Hu, Y., Liu, R., et al. (2017) A Review on in Situ Phytoremediation of Mine Tailings. Chemosphere, 184, 594-600. https://doi.org/10.1016/j.chemosphere.2017.06.025