Heavy Metal Accumulation in Maize (<i>Zea mays</i> L.) Grown on Chromated Copper Arsenate (CCA) Contaminated Soil Amended with Treated Composted Sewage Biosolid
- 1 Chemistry Department, Faculty of Science, Mbarara University of Science & Technology, Mbarara, Uganda
- 2 Chemistry Department, Faculty of Science, Mbarara University of Science & Technology, Mbarara, Uganda
- 3 International Health Sciences, Clarke International University, Kampala, Uganda
- 4 Chemistry Department, School of Physical Sciences, College of Natural Sciences, Makerere University, Kampala, Uganda
- 5 Chemistry Department, Faculty of Science, Mbarara University of Science & Technology, Mbarara, Uganda
Abstract
A pot experiment was conducted to investigate the heavy metal accumulation in maize ( Zea mays L.) plant grown in chromated copper arsenate (CCA) soil amended with treated composted sewage biosolid. The initial concentrations of chromium, copper, arsenate in the CCA soil and sewage biosolid were determined by atomic absorption spectrophotometer. These were found to be, in CCA soil: 365.8 ± 6.18, 109.22 ± 14.04, 28.22 ± 3.8 and in sewage biosolid: 35 ± 1.06, 1.0 ± 0.02, 0 mg·kg -1 respectively. The concentration of Cr, Cu and As determined in both the roots and shoots generally decreased with increase in percentage amendment concentration and number of days (20 and 40 days after planting). At 20 days, the total metal concentration ranges in roots were As (5.54 ± 0.03 - 6.69 ± 1.14), Cr (9.59 ± 0.02 - 13.22 ± 0.03), Cu (2.28 ± 0.06 - 4.53 ± 0.37) mg·kg -1 while at 40 days the values were As (5.60 ± 0.19 - 6.08 ± 0.01), Cr (9.47 ± 0.04 - 10.95 ± 0.09), Cu (3.94 ± 0.19 - 4.64 ± 0.07) mg·kg -1 . For the shoot system, the concentrations of the metals at 20 days were As (5.28 ± 0.03 - 5.90 ± 0.13), Cr (9.30 ± 0.05 - 10.07 ± 0.06), Cu (3.64 ± 0.12 - 4.72 ± 0.15) mg/kg while at 40 days the values obtained were As (5.28 ± 0.03 - 5.9 ± 0.13), Cr (9.69 ± 0.14 - 10.07 ± 0.03), Cu (2.94 ± 0.72 - 4.53 ± 0.03) mg·kg -1 . The roots accumulated the three heavy metals more than the shoot system at all treatments used. Concentration of arsenic, chromium and copper in the plants decreased with increasing percentage amendments. The results suggest relatively low bioavailability of the three metals in CCA soil treated with high percentages of sewage biosolid as an amendment.
- Khodadoust, A.P., Reddy, K.R. and Maturi, K. (2005) Effect of Different Extraction Agents on Metal and Organic Contaminant Removal from a Field Soil. Journal of Hazardous Materials, 117, 15-24. https://doi.org/10.1016/j.jhazmat.2004.05.021
- Alloway, B.J. (1995) Soil Process and Behavior of Metals in Soils. Blackie Academic and Professionals, London, 38-57.
- Faisal, M. and Hasnain, S. (2004) Bacterial Role in the Reduction of Toxic Cr (VI) in to Cr (III). Chinese Journal of Biotechnology, 20, 774-778.
- Horsfal, M.J. and Spiff, A. (2005) Speciation and Bioavailability of Heavy Metals in Sediment of Diobu River, (Port Harcourt, Nigeria). European Journal of Science, 6, 20-36.
- Okieimen, F.E., Uwumarongie, I.E.G. and Ikhuoria, E.U. (2011) Effect of Organic Amendments on Metal Accumulation by Maize (Zea mays L.) in Contaminated Soil. International Journal of Agricultural Science, 1, 366-372.
- Uwumarongie, E.G. and Okieimen, F.E. (2007) Comparison of Two Sequential Extraction Schemes for Metals in CCA Contaminated Soils. Nigerian Journal of Applied Sciences, 25, 13-21.
- Uwumarongie, E.G., Okieimen, F.E. and Uwumarongie, O.H. (2008) Spatial Variation and Speciation of Copper, Chromium and Arsenic in Contaminated Soils. Journal of Chemical Society, Nigeria, 33, 112-121.
- Ikhuoria, E.U., Urunmatsoma, S.O.P. and Okieimen, F.E. (2010) Preliminary Investigation of Chemical Fractionation and Heavy Metal Accumulation in Plant Maize (Zea mays) Grown on Chromate Copper Arsenate Contaminated Soil Amended with Poultry Droppings. African Journal of Biotechnology, 9, 2675-2682.
- Smith, L.A., Means, J.L. Chen, A. Alleman, B., Chapman, C.C., Tixier, J.S., Brauning, S.E., Gavaskor, A.R. and Royer, M.D. (1995) Remedial Options for Metal-Contaminated Sites. Lewis Publishers, New York.
- Wenger, S.K., Gupta, S.K. and Schulin, R. (2008) The Values of Nitrilotriacetate in Chelate-Assisted Phytoremediation. Developments in Soil Science, 32, 679-695. https://doi.org/10.1016/S0166-2481(07)32028-X
- Page, A.L., Miller, R.H. and Keeney, D.R., Ed 2 Part II (1982) Methods of Soil Analysis. Madison, WI American Society of Agrononomy, 803.
- Department of Petroleum Resources (DPR) (1991) Environmental Guidelines and Standards for the Petroleum Industry in Nigeria (EGASPIN), Lagos, 278-281.
- Redman, A.D., Macalady, D.L. and Ahmann, D. (2002) Natural Organic Matter Affects Arsenic Speciation and Sorption onto Hematite. Environmental Science Technolology, 36, 2889-2896. https://doi.org/10.1021/es0112801