Phosphate Desorption Characteristics of Some Representative Soils of Bangladesh: Effect of Exchangeable Anions, Water Molecules and Solution to Soil Ratios

Abstract

Establishment of phosphate (P) retention and release capacity of soils is essential for effective nutrient management and environmental protection. In this experiment, we studied the influence of soil properties on P desorption and the relationship between phosphate sorption and desorption. Among the soil series, the Ghior soil had the highest percent clay (59.32%) and free iron oxide (15241 mg·kg–1) content. Along the catena of the calcareous soils, percent clay contents increased. For sorption study, the soils were equilibrated with 0.01 M CaCl2 solution containing 0, 1, 2, 4, 8, 16, 25, 50, 100 and 150 mg·P·L–1 solution. For desorption, three extractants namely, SO42- (0.005 M) as Na2SO4, HCO3- (0.01 M) as NaHCO3 and distilled water were used at extractant to soil ratios of 30:1, 60:1 and 100:1 (v/w). Among the sorption equations, the Langmuir equation showed better fit to the sorption data at higher P concentrations. The amount of phosphate desorbed by all the three extractants increased significantly with the increasing extractant to soil ratios. Phosphate desorption by and water molecules was highly correlated with pH, percent clay and free iron oxide content of the soil. Significant positive correlation (r > 0.64, P < 0.05) was observed between the amount of phosphate desorption and phosphate sorption maximum (bL). Phosphate desorption by SO42- and water molecules was also positively correlated with Freundlich constant, N (r > 0.67, P < 0.05) and EPC0 (r > 0.72, P < 0.05). On the other hand, a significant negative correlation (r > –0.77, P < 0.05) was observed between phosphate desorption and phosphate binding strength (KL). The results suggest that freshly sorbed phosphate ions (inner-sphere complex forming species) can be readily desobed by outer-sphere complex forming species like sulphate and bicarbonate ions. Water molecules also desorbed significant amount of freshly sorbed phosphate from the soil colloids.

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M. Afsar, S. Hoque and K. Osman, "Phosphate Desorption Characteristics of Some Representative Soils of Bangladesh: Effect of Exchangeable Anions, Water Molecules and Solution to Soil Ratios," Open Journal of Soil Science, Vol. 2 No. 3, 2012, pp. 234-241. doi: 10.4236/ojss.2012.23028.

Conflicts of Interest

The authors declare no conflicts of interest.

References

[1] M. C. Paulter and J. T. Sims, “Relationships between Soil Test Phosphorus, Soluble Phosphorus and Phosphorus Saturation in Delaware Soils,” Soil Science Society of America Journal, Vol. 64, 2000, pp. 765-773. doi:10.2136/sssaj2000.642765x
[2] M. Jalali and E. N. Peikam, “Phosphorus Sorption-Desorption Behavior of River Bed Sediments in the Abshineh River, Hamedan, Iran, Related to their Composition,” Environmental Monitoring and Assessment, 2012, doi:10.1007/s10661-012-2573-5
[3] B. W. Bache and E. G. Williams, “A Phosphate Sorption Index for Soils,” Journal of Soil Science, Vol. 22, 1971, pp. 289-301. doi:10.1111/j.1365-2389.1971.tb01617.x
[4] M. I. Temkin and V. Pyzhev, “Kinetic of Ammonia Synthesis on Promoted Iron Catalysts,” Acta PhysiochimI, Vol. 12, 1940, pp. 327-356.
[5] G. Sposito, “The Chimistry of Soils,” Oxford University Press, Madison Avenue, New York, 1989, pp. 148-165.
[6] F. J. Hingston, A. M. Posner and J. P. Quirk, “Anion adsorption by Goethite and Gibbsite. I. Role of the proton in determining adsorption envelopes,” Journal of Soil Science, Vol. 23, 1972, pp. 177-192. doi:10.1111/j.1365-2389.1972.tb01652.x
[7] F. J. Hingston, A. M. Posner and J. P. Quirk, “Anion adsorption by Goethite and Gibbsite. II. Desorption of anions from hydrous oxide surfaces,” Journal of Soil Science, Vol. 25, 1974, pp. 16-26. doi:10.1111/j.1365-2389.1974.tb01098.x
[8] H. L. Bohn, B. L. McNealand and G. A. O’Connor, “Soil Chemistry,” (3rd ed.), John Wiley and Sons Inc., USA, 2011.
[9] N. J. Barrow, “The Description of Desorption of Phosphate from Soil,” Journal of Soil Science, Vol. 30, 1979, pp. 259-270. doi:10.1111/j.1365-2389.1979.tb00983.x
[10] P. A. Vadas and J. T. Sims, “Predicting Phosphorus Desorption from Mid-Atlantic Coastal Plain Soil,” Soil Science Society of America Journal, Vol. 66, 2002, pp. 623-631. doi:10.2136/sssaj2002.0623
[11] M. C. Horta and J. Torrent, “The Olsen P Method as an Agronomic and Environmental Test for Predicting Phosphate Release from Acid Soils,” Nutrient Cycling in Agroecosystems, Vol. 77, 2007, pp. 283–292. doi:10.1007/s10705-006-9066-2
[12] R. E. White, “Studies on the Phosphate Potentials of Soils. IV. The Mechanism of the Soil/Solution Ratio Effect,” Australian Journal of Soil Research, Vol. 4, 1966, pp. 77–85. doi:10.1071/SR9660077
[13] G. D. Hope and J. K. Syers, “Effects of Solution to soil Ratio on Phosphate Sorption by Soils,” Journal of Soil Science, Vol. 27, 1976, pp. 301-306. doi:10.1111/j.1365-2389.1976.tb02000.x
[14] M. L. Leclerc, M. C. Nolin, D. Cluis and R. R. Simard, “Grouping Soils of the Montreal Lowlands (Quebec) According to Fertility and P Sorption and Desorption Characteristics,” Canadian Journal of Soil Science, Vol. 81, 2001, pp. 71-83. doi:10.4141/S00-021
[15] K. Daly, D. Jeffrey and H. Tunney, “The Effect of Soil Type on Phosphorus Sorption Capacity and Desorption Dynamics in Irish Grassland Soils,” Soil Use Management, Vol. 17, 2001, pp. 12-20. doi:10.1111/j.1475-2743.2001.tb00003.x
[16] G. S. Toor, G. S. Bahl and A. C. Vig, “Pattern of P Availability in Different Soils as Assessed by the Adsorption Equations,” Journal of Indian Society of Soil Science, Vol. 45, 1997, pp. 719-723.
[17] N. J. Barrow, “Modeling the Effects of pH on Phosphate Sorption by Soils,” Journal of Soil Science, Vol. 35, 1984, pp. 283-297. doi:10.1111/j.1365-2389.1984.tb00283.x
[18] I. Bertrand, R. E. Holloway, R. D. Armstrong and M. J. MCLaughlin, “Chemical Characteristics of Phosphorus in Alkaline Soils from Southern Australia,” Australian Journal of Soil Research, Vol. 41, 2003, pp. 61-76. doi:10.1071/SR02021
[19] I. C. R. Holford and G. E. G. Mattingly, “The High-and Low-energy Phosphate Adsorbing Surfaces in Calcareous Soils,” Journal of Soil Science, Vol. 26, 1974, pp. 407-417. doi:10.1111/j.1365-2389.1975.tb01964.x
[20] IUSS Working Group WRB, World reference base for soil resources 2006, World Soil Resources Reports No. 103, FAO, Rom, 2006.
[21] G. J. Bouyoucos, “The Hydrometer as a New Method for the Mechanical Analysis of Soils,” Soil Science, Vol. 23, 1927, pp. 343-353. doi:10.1097/00010694-192705000-00002
[22] A. Walkley and I. A. Black, “An Examination of the Degtjareff Method for Determining Soil Organic Matter and a Proposed Modification of the Chromic Acid Titration Method,” Soil Science, Vol. 37, 1934, pp. 29-38.
[23] M. L. Jackson, “Soil Chemical Analysis,” Prentice-Hall, Inc., USA, 1973, pp. 38-56.
[24] S. R. Olsen, C. V. Coles, F. S. Watanabe and L. A. Dean, “Estimation of Available Phosphorus in Soils by Extraction with Sodium Bicarbonate,” USDA Circ. 939, USDA, Washington, DC, 1954.
[25] J. Murphy and J. P. Riley, “A Modified Single Solution Method for the Determination of Phosphate in Natural Waters,” Analytica Chemica Acta, Vol. 27, 1962, pp. 31-36. doi:10.1016/S0003-2670(00)88444-5
[26] L. E. Allison and C. D. Moodie, “Carbonate,” In: Black, C. A., Ed., Methods of soil analysis. Part 2: Chemical and microbiological properties, Agronomy, Madison, Wisconsin, USA, 1965, pp.1379-1398.
[27] G. S. Holmgren, “A Rapid Citrate-Dithionate Extractable Iron Procedure,” Soil Science society of America Proceedings, Vol. 31, 1967, pp. 210-221.
[28] J. A. Mckeague and J. H. Day, “Dithionate and Oxalate Extractable Fe and Al as Aids in Differentiating Various Classes of Soils,” Canadian Journal of Soil Science, Vol. 46, 1966, pp. 13-22. doi:10.4141/cjss66-003
[29] C. L. Bascomb, “Distribution of Pyrophosphate-Extractable Iron and Organic Carbon in Soils of Various Groups,” Journal of Soil Science, Vol. 19, 1968, pp. 251-258. doi:10.1111/j.1365-2389.1968.tb01538.x
[30] R. V. Olson and R. Ellis, “Iron,” In: Black, C. A., Ed., Methods of Soil Analysis, Part 2. Agron. Monogr. 9, ASA and SSSA, Madison, WI, 1982, pp. 301-312.
[31] A. N. Sharpley, L. R. Ahuja, M. Yamamoto and R. G. Menzel, “The kinetics of Phosphorus Desorption from Soil,” Soil Science Society of America Journal, Vol. 45, 1981, pp. 493-496. doi:10.2136/sssaj1981.03615995004500030010x
[32] I. Langmuir, “The Adsorption of Gases on Plane Surfaces of Glass, Mica and Platinum,” Journal of American Chemical Society, Vol. 40, 1918, pp. 1361-1402. doi:10.1021/ja02242a004
[33] H. Freundlich, “Colloid and Capillary Chemistry,” Methuen, London, pp. 114-122, 1926.
[34] M. Z. Afsar, S. Hoque and K. T. Osman, “A Comparison of the Langmuir, Freundlich and Temkin Equations to Describe Phosphate Sorption Characteristics of Some Representative Soils of Bangladesh,” International Journal of Soil Science, Vol.7, No. 3, pp. 91-99, DOI.10.3923/ijss.2012.91.99.
[35] M. Emadi, M. M. Baghernejad, M. Emadi, H. Fathi and M. Saffari, “Phosphorus Forms and Behaviors in Selected Heavily Fertilized Soils,” Archieves of Agronomy and Soil Science Vol. 55, No. 6, 2009, pp. 579-595. doi:10.1080/03650340902889796
[36] S. E. Kuo, J. Jellum and W. L. Pan, “Influence of Phosphate Sorption Parameters of Soils on the Desorption of Phosphate by Various Extractants,” Soil Science Society of America Journal, Vol. 52, 1988, pp. 974-979. doi:10.2136/sssaj1988.03615995005200040014x
[37] K. Zhou and Y, Li, “Phosphorus-Sorption Characteristics of Soils and Limestone from the Southern Everglades and Adjacent Farmlands,” Soil Science Society of America Journal, Vol. 65, 2011, pp. 1404-1412. doi:10.2136/sssaj2001.6551404x

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