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Author(s)
College of Agriculture, Islamic Azad University, Tehran, Iran.
College of Agriculture, Islamic Azad University, Tehran, Iran.
College of Agriculture, Isfahan University of Technology, Isfahan, Iran.
College of Agriculture, Islamic Azad University, Tehran, Iran.
College of Agriculture, Isfahan University of Technology, Isfahan, Iran.
College of Agriculture, Islamic Azad University, Tehran, Iran.
College of Agriculture, Isfahan University of Technology, Isfahan, Iran.
College of Agriculture, Islamic Azad University, Tehran, Iran.
College of Agriculture, Isfahan University of Technology, Isfahan, Iran.
Preceding crops as a source of organic matter are
important sources of micronutrient and can play an important role in the
soil fertility and soil cycling of micronutrients. In addition to the
role of the organic matter in increasing the concentration of
micronutrients in soil solution, attention should be also paid to the
role of the kind and the quantity of the root’s exudates released in
response to the incorporation of different plant residues in the
rhizosphere. Present research was conducted with the objective of
studying the effect of the kind of preceding crops: Trifolium (Trifolium pretense L) and Sorghum (Sorghum bicolor
L) on chemical forms of copper (Cu) in solid phases of a calcareous
soil in a completely randomized block field experiment with split plot
(3 m × 5 m) arrangement, consisting of 3 replications and 3 treatments.
After incorporation of the residue, wheat (genotype back cross) was
planted. After harvesting the wheat, soil samples were collected from
root zone of wheat. Selected soil properties and chemical forms of Cu
were determined in the solid phases of the soil samples. Incorporation
of plant residues significantly increased the concentration of
DTPA-extractable Cu, in the soil. The highest effect was obtained for
Trifolium treatment. Incorporation of plant residues decreased the
carbonate-bound Cu (Cu-Carb) fraction in the solid phase and increased
oxide-bound Cu (Cu-Ox) as compared to the control (fallow treatment).
Fraction of organic-bound Cu (Cu-Org) in the soil increased with
incorporation of plant residues as compared with the fallow treatment.
Trifolium was the most effective in increasing Cu-Org. Cu-Ox and
Cu-Residual (Cu-Res) forms showed a significant negative correlation and
Cu-Org showed a significant positive correlation with the concentration
of DTPA-extractable Cu. Incorporation of Trifolium residues
decreased the fraction (%) of Cu-Carb and Cu-Ox (less soluble forms) and
consequently increased the fraction (%) of Cu-Org which in turn
elevated the concentration of DTPA-extractable Cu. Trifolium was the most effective in increasing the phytoavailability of Cu in soil.
KEYWORDS
Cite this paper
Kabirinejad, S. , Kalbasi, M. , Khoshgoftarmanesh,
A. , Hoodaji, M. and Afyuni, M. (2014) Chemical Forms and
Phytoavailability of Copper in Soil as Affected by Crop Residues
Incorporation. American Journal of Analytical Chemistry, 5, 604-612. doi: 10.4236/ajac.2014.59068.
| [1] | Frausto da Silva, J.J.R. and Williams, R.J.P. (2001) The Biological Chemistry of the Elements. The Inorganic Chemistry of Life, University Press, Oxford, 584 p. |
| [2] |
Koch, K.A., Pena, M.M.O. and
Thiele, D.J. (1997) Copper-Binding Motifs in Catalysis, Transport,
Detoxification and Signaling. Chemistry & Biology, 4, 549-560. http://dx.doi.org/10.1016/S1074-5521(97)90241-6 |
| [3] |
Yruela, I. (2005) Copper in Plants. Brazilian Journal of Plant Physiology, 17, 145-156. http://dx.doi.org/10.1590/S1677-04202005000100012 |
| [4] |
Karamanos, K., Peratzakis, A.,
Kapiris, P., Nikolopoulos, S., Kopanas, J. and Eftaxias, K. (2005)
Extracting Preseismic Electromagnetic Signatures in Terms of Symbolic
Dynamics. Nonlinear Processes in Geophysics, 12, 835-848. http://dx.doi.org/10.5194/npg-12-835-2005 |
| [5] |
Agbenin, J.O. (2010)
Extractability and Transformation of Copper and Zinc Added to Tropical
Savanna Soil under Long-Term Pasture. Communications in Soil Science and
Plant Analysis, 41, 1016-1027. http://dx.doi.org/10.1080/00103621003648150 |
| [6] | Prasad, B. and Sinha, S.K. (1995) Nutrient Recycling through Crop Residues Management for Sustainable Rice and Wheat Production in Calcareous Soil. Fertility News, 40, 15-23. |
| [7] |
Pyddtt, F.B. (1999) Comparison
of Foliar and Stem Bioaccumulation of Heavy Metals by Corsican Pines in
the Mount Olympus Area of Cyprus. Ecotoxicology and Environmental
Safety, 42, 57-61. http://dx.doi.org/10.1006/eesa.1998.1726 |
| [8] |
Tessier, A., Campbell, P.G.C.
and Bisson, M. (1979) Sequential Extraction Procedure for the Speciation
of Particulate Trace Metals. Analytical Chemistry, 51, 844-851. http://dx.doi.org/10.1021/ac50043a017 |
| [9] | SAS Institute (1999) SAS System for Windows. Release 8.02. SAS Institute, Cary. |
| [10] | Stevenson (1994) Human Chemistry: Genesis, Composition Reactions. John Wiley and Sons, New York. |
| [11] |
Eghball, B., Ginting, D. and
Gilley, J.E. (2004) Residual Effects of Manure and Compost Applications
on Corn Production and Soil Properties. Agronomy Journal, 96, 442-447. http://dx.doi.org/10.2134/agronj2004.0442 |
| [12] |
Payne, G.G., Martens, D.C.,
Kornegay, E.T. and Lindemann, M.D. (1988) Availability and Form of
Copper in Three Soils Eight Annual Application of Copper-Enriched Swine
Manure. Journal of Environmental Quality, 17, 740-746. http://dx.doi.org/10.2134/jeq1988.00472425001700040038x |
| [13] | Gunkel, P., Jezequel, K. and Faber, B. (2002) Temporal Evolution of Copper Distribution in Soil Fractions, Influence of Soil pH and Organic Carbon Level on Copper Distribution. Environmental Technology, 23, 1001-1008. |
| [14] |
Gunkel, P., Roth, E. and Faber,
B. (2003) Copper Distribution in Chemical Soil Fractions and
Relationships with Maize Crop Yield. Environmental Chemistry Letters, 1,
92-97. http://dx.doi.org/10.1007/s10311-002-0003-6 |
| [15] | Yu, Y. and Zhou, Q.X. (2006) Impacts of Soybean Growth on Cu Speciation and Distribution in Two Rhizospher Soils. Biology and Fertility of Soils, 42, 450-456. |
| [16] |
Ma, Y.B. and Uren, N.C. (1995)
Application of a New Fractionation Scheme for Heavy Metals in Soils.
Communications in Soil Science and Plant Analysis, 26, 3291-3303. http://dx.doi.org/10.1080/00103629509369527 |
| [17] |
Ramos, L., Hernandez, L. and
Gonzalez, M.J. (1994) Sequential Fractionation of Copper, Lead, Cadmium
and Zinc in Soils from or Near Donana Natioinal Park. Journal of
Environmental Quality, 23, 50-57. http://dx.doi.org/10.2134/jeq1994.00472425002300010009x |
| [18] | Mehra, O.P. and Jackson, M.L. (1960) Iron Oxide Removal from Soils and Clays by a Dithionate-Citrate System Buffered with Sodium Carbonate. Proceedings of the National Conference on Clays and Clay Minerals, Pergamon Press, New York, 317-327. |
| [19] |
Wei, X.R., Hao, M.D., Shao, M.G.
and Gale, W.J. (2006) Changes in Soil Properties and Availability of
Soil Micronutrients after 18 Years of Cropping and Fertilization. Soil
and Tillage Research, 91, 120-130. http://dx.doi.org/10.1016/j.still.2005.11.009 |
| [20] | Ahumada, I., Escudero, P., Castillo, G., Carrasco, A., Ascar, L. and Fuentes, E. (2004) Use of Sequential Extraction to Assess the Influence of Sewage Sludge Amendment on Metal Mobility in Chilean Soils. Journal of Environmental Monitoring, 6, 327-334. |
| [21] |
Arain, M.B., Kazi, T.G., Jamali,
M.K., Jalbani, N., Afridi, H.I. and Shah, A. (2008) Total Dissolved and
Bioavailable Elements in Water and Sediment Samples and Their
Accumulation in Oreochromis mossambicus of Polluted Manchar Lake.
Chemosphere, 70, 1845-1856. http://dx.doi.org/10.1016/j.chemosphere.2007.08.005 |
| [22] |
Jamali, M.K., Kazi, T.G., Arain,
M.B., Afridi, H.I., Jalbani, N. and Adil, R.S. (2006) Correlation of
Total and Extractable Heavy Metals from Soil and Domestic Sewage Sludge
and Their Transfer to Maize (Zea mays L.) Plants. Toxicological &
Environmental Chemistry, 88, 619-632. http://dx.doi.org/10.1080/02772240600875052 |
| [23] |
Jamali, M.K., Kazi, T.G., Arain,
M.B., Afridi, H.I., Jalbani, N. and Memon, A.R. (2007) Heavy Metal
Contents of Vegetables Grown in Soil, Irrigated with Mixtures of
Wastewater and Sewage Sludge in Pakistan, Using Ultrasonic-Assisted
Pseudo-Digestion. Journal of Agronomy and Crop Science, 193, 218-228. http://dx.doi.org/10.1111/j.1439-037X.2007.00261.x |
| [24] |
Jamali, M.K., Kazi, T.G., Arain,
M.B., Afridi, H.I., Jalbani, N., Memon, A.R. and Shah, A. (2007) Heavy
Metal from Soil and Domestic Sewage Sludge and Their Transfer to Sorghum
Plants. Environmental Chemistry Letters, 5, 209-218. http://dx.doi.org/10.1007/s10311-007-0101-6 |
| [25] |
Kabala, C. and Singh, B. (2001)
Fractionation and Mobility of Copper, Lead and Zinc in Soil Profiles in
the Vicinity of a Copper Smelter. Journal of Environmental Quality, 30,
485-492. http://dx.doi.org/10.2134/jeq2001.302485x |
| [26] |
Krishnamurti, G.S.R. and Naidu,
R. (2002) Solid-Solution Speciation and Phytoavailability of Copper and
Zinc in Soil. Environmental Science & Technology, 36, 2645-2651. http://dx.doi.org/10.1021/es001601t |
| [27] |
Kawasaki, A., Kimura, R. and
Arai, S. (2000) Fractionation of Trace Elements in Wastewater Treatment
Sludges. Communications in Soil Science and Plant Analysis, 31,
2413-2423. http://dx.doi.org/10.1080/00103620009370595 |
| [28] |
McGrath, S., Sanders, J.R. and
Shalaby, M.H. (1998) The Effect of Soil Organic Matter Levels on Soil
Solution Concentrations and Extractabilities of Manganese, Zinc and
Cooper. Geoderma, 42, 177-188. http://dx.doi.org/10.1016/0016-7061(88)90033-X |
| [29] |
Tao, S., Chen, Y.J., Xu, F.L.,
Cao, J. and Li, B.G. (2003) Changes of Copper Speciation in Maize
Rhizosphere Soil. Environmental Pollution, 122, 447-454. http://dx.doi.org/10.1016/S0269-7491(02)00313-5 |
| [30] |
Arias, M., López, E., Fernández,
D. and Soto, B. (2004) Copper Distribution and Dynamics in Acid
Vineyard Soils Treated with Copper-Based Fungicides. Soil Science, 169,
796-805. http://dx.doi.org/10.1097/01.ss.0000148739.82992.59 |
| [31] |
Fuentes, A., Llorens, M., Saez,
J., Soler, A., Aguilar, M.I., Ortuno, J.F. and Meseguer, V.F. (2004)
Simple and Sequential Extractions of Heavy Metals from Different Sewage
Sludges. Chemosphere, 54, 1039-1047. http://dx.doi.org/10.1016/j.chemosphere.2003.10.029 |
| [32] |
Nemati, K., Abu Bakar, N.K.,
Sobhanzadeh, E. and Abas, M.R. (2009) A Modification of the BCR
Sequential Extraction Procedure to Investigate the Potential Mobility of
Copper and Zinc in Shrimp Aquaculture Sludge. Microchemical Journal,
92, 165-169. http://dx.doi.org/10.1016/j.microc.2009.03.002 |
| [33] |
Burt, R., Wilson, M.A., Keck,
T.J., Dougherty, B.D., Strom, D.E. and Lindahl, J.A. (2003) Trace
Element Speciation in Selected Smelter-Contaminated Soils in Anaconda
and Deer Lodge Valley, Montana, USA. Advances in Environmental Research,
8, 51-67. http://dx.doi.org/10.1016/S1093-0191(02)00140-5 |
| [34] |
Schramel, O., Michalke, B. and
Kettrup, A. (2000) Study of the Copper Distribution in Contaminated
Soils of Hop Fields by Single and Sequential Extraction Procedures.
Science of the Total Environment, 263, 11-22. http://dx.doi.org/10.1016/S0048-9697(00)00606-9 |
| [35] |
Lindsay, W.L. (1991) Iron Oxide
Solubilization by Organic Matter and Its Effect on Iron Availability.
Plant and Soil, 130, 27-34. http://dx.doi.org/10.1007/BF00011852 eww141110lx |
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