Short-Range-Order Minerals and Dominant Accessory Properties Controlling P Sorption in Tropical Tephra Soils of the Cameroon Volcanic Line — Oak Academic Publishing
Research ArticleOpen AccessGoogle Scholar indexed
Short-Range-Order Minerals and Dominant Accessory Properties Controlling P Sorption in Tropical Tephra Soils of the Cameroon Volcanic Line
Soil Science Department, Faculty of Agronomy and Agricultural Sciences, University of Dschang, Dschang, Cameroon
,
Soil Science Department, Faculty of Agronomy and Agricultural Sciences, University of Dschang, Dschang, Cameroon
,
Soil Science Department, Faculty of Agronomy and Agricultural Sciences, University of Dschang, Dschang, Cameroon
,
Geology Department, Faculty of Sciences, Ghent University, Ghent, Belgium
1 Soil Science Department, Faculty of Agronomy and Agricultural Sciences, University of Dschang, Dschang, Cameroon
2 Soil Science Department, Faculty of Agronomy and Agricultural Sciences, University of Dschang, Dschang, Cameroon
3 Soil Science Department, Faculty of Agronomy and Agricultural Sciences, University of Dschang, Dschang, Cameroon
4 Geology Department, Faculty of Sciences, Ghent University, Ghent, Belgium
Knowledge on soil properties likely to influence P sorption in tephra soils is very important for sustainable management of available P. Sorption studies on six tephra soils were conducted to relate P sorption to soil characteristics in order to identify those with potential influence on P sorption. Four equilibrium-based sorption models commonly encountered in soil studies (Langmuir, Freundlich, Temkin, and Van Huay) were used to describe P sorption in the soils. P sorption was determined by measuring the residual P content of a clarified equilibrating solution of 0.02 N KCl containing varying concentrations (0, 5, 10, 15, 30, 40, 50, 60, 80, and 100 mg/L) of P as KH 2 PO 4 after mixing with 1 g of soil in duplicates for 16 hours at 25 ° C. Maximum amount of P sorbed for the varying P concentrations used ranged from 2080 to 5402 mg/kg with a potential for greater P sorption maxima at higher P solution concentrations. P sorption in these soils was best described by the Langmuir and Freundlich models. Allophane and ferrihydrite are the principal species controlling the high P sorption in these soils. pH-NaF proved to be a potentially reliable test for assessing the presence of allophanic materials and thus for estimating P sorbed. This work would guide both effective and efficient P fertilizer management with economic implications for both the study area and similar environments.
Pansu, M. and Gautheyrou, J. (2006) Handbook of Soil Analysis. Mineralogical, Organic and Inorganic Methods. Springer-Verlag, Berlin, Heidelberg. https://doi.org/10.1007/978-3-540-31211-6
Xu, R.K., Qafoku, N.P., Van Ranst, E., Li, J.Y. and Jiang, J. (2016) Adsorption Properties of Subtropical and Tropical Variable Charge Soils: Implications from Climate Change and Biochar Amendment. In: Sparks, D., Ed., Advances in Agronomy, Vol. 135, Academic Press, Chennai, 1-58. https://doi.org/10.1016/bs.agron.2015.09.001
Shoji, S., Nanzyo, M. and Dahlgren, R.A. (1993) Volcanic Ash Soils: Genesis, Properties and Utilization. Developments in Soil Science Vol. 21. Elsevier, New York.
Van Ranst, E., Hof, J., Kips, P.A., Awah, E.T. and Zambo, J. (1989) Volcanic Soils of the Lower South Eastern and Eastern Slopes of Mount Cameroon (West Africa). Research Project UCD. Technical Report. FAO/UNDP Project CMR/83/004.
Cabello, M.J., Boem, F.H.G., Quintero, C.E. and Rubio, G. (2016) Soil Characteristics Involved in Phosphorus Sorption in Mollisols. Soil Science Society of America Journal, 80, 1585-1590. https://doi.org/10.2136/sssaj2016.07.0235n
Fink, J.R., Inda, A.V., Tiecher, T. and Barrón, V. (2016) Iron Oxides and Organic Matter on Soil Phosphorus Availability. Ciência e Agrotecnologia, 40, 369-379. https://doi.org/10.1590/1413-70542016404023016
Limousin, G., Gaudet, J.P., Charlet, L., Szenknect, S., Barthès, V. and Krimissa, M. (2007) Sorption Isotherms: A Review on Physical Bases, Modelling and Measurement. Applied Geochemistry, 22, 249-275. https://doi.org/10.1016/j.apgeochem.2006.09.010
Langmuir, I. (1918) The Adsorption of Gases on Plane Surfaces of Glass, Mica and Platinum. Journal of American Chemical Society, 40, 1361-1382. https://doi.org/10.1021/ja02242a004
Freundlich, H. (1926) Colloid and Capillary Chemistry. Methuen and Co. Ltd., London.
Temkin, M.I. and Pyzhev, V. (1940) Recent Modifications to the Langmuir Isotherms. Acta Physico-Chimica Sinica, 12, 217-222.
Pagel, H. and Van Huay, H. (1976) Wichtige Parameter der Phosphat-sorptionskur-ven einiger Boden der Tropen und Subtropen und ihre zeit-liche Veranderung durch P-Dungung. Arch. Acker-u-Pflanzenbau u Bodenkd, 20, 765-778.
Gèze, B. (1943) Géographie physique et géologie du Cameroun occidental. Vol. 1. éditions du Muséum, Paris.
Nkouathio, D.G., Kagou, D.A., Bardintzeff, J.M., Wandji, P., Bellon, H. and Pouclet, A. (2008) Evolution of Volcanism in Graben and Horst Structures along the Cenozoic Cameroon Line (Africa): Implications for Tectonic Evolution and Mantle Source Composition. Mineralogy and Petrology, 94, 287-303. https://doi.org/10.1007/s00710-008-0018-1
Enang, R.K., Yerima, B.P.K., Kome, G.K. and Van Ranst, E. (2017) Effects of Forest Clearance and Cultivation on Bulk Density Variations and Relationships with Texture and Organic Matter in Tephra Soils of Mount Kupe (Cameroon). Communications in Soil Science and Plant Analysis, 48, 2231-2245. https://doi.org/10.1080/00103624.2017.1407785
Pouclet, A., Kagou, D.A., Bardintzeff, J.M., Wandji, P., Chakam, T.P., Nkouathio, D.G., Bellon, H. and Ruffet, G. (2014) The Mount Manengouba, a Complex Volcano of the Cameroon Line: Volcanic History, Petrological and Geochemical Features. Journal of African Earth Sciences, 97, 297-321. https://doi.org/10.1016/j.jafrearsci.2014.04.023
FAO (2006) Guidelines for Soil Description. 4th Edition, FAO, Rome.
Enang, R.K., Yerima, B.P.K., Kome, G.K. and Van Ranst, E. (2018) Assessing the Effectiveness of the Walkley-Black Method for Soil Organic Carbon Determination in Tephra Soils of Cameroon. Communications in Soil Science and Plant Analysis, 49, 2379-2386. https://doi.org/10.1080/00103624.2018.1510948
Soil Survey Staff (1996) Soil Survey Laboratory Methods Manual. Procedures for Collecting Soil Samples and Methods of Analysis for Soil Survey, Soil Survey Investigation Report No. 42, Version 3.0. USDA, Washington DC.
Parfitt, R.L. and Wilson, A.D. (1985) Estimation of Allophane and Halloysite in Three Sequences of Volcanic Soils. In: Fernandez-Caldos, E. and Yaalon, D.H., Eds., Volcanic Soils, Weathering and Landscape Relationships of Soils on Tephra and Basalt (Catena Supplement Vol. 7), ISSS-AISS-IBG, Cremlingen, 1-8.
Childs, C.W. (1985) Towards Understanding Soil Mineralogy: II. Notes on Ferrihydrite. NZ Soil Bureau Laboratory Report CM7, Lower Hutt.
Craze, B. (1995) Phosphorus Sorption. Soil Survey Standard Test Method. DSNR.
OriginLab (2000) Origin 6.0: Scientific Data Analysis and Graphing Software Origin Lab Corporation. Northampton.
Microsoft Corporation (2006) Microsoft Office Excel for Windows Version 2007.
SPSS Inc. (2008) SPSS Statistics for Windows, Version 17.0. SPSS Inc., Chicago.
Evangelou, V.P. (1998) Environmental Soil and Water Chemistry: Principles and Applications. John Wiley & Sons, New York.
Brenner, J., Porter, W., Phillips, J.R., Childs, J., Yang, X. and Mayes, M.A. (2019) Phosphorus Sorption on Tropical Soils with Relevance to Earth System Model Needs. Soil Research, 57, 17-27. https://doi.org/10.1071/SR18197
IUSS Working Group WRB (2015) World Reference Base for Soil Resources 2014, Update 2015: International Soil Classification System for Naming Soils and Creating Legends for Soil Maps. World Soil Resources Report No. 106. FAO, Rome.
Van Breemen, N. and Buurman, P. (2002) Soil Formation. Kluwer Academic Publishers, Dordrecht. https://doi.org/10.1007/0-306-48163-4
Latrille, C., Denaix, L. and Lamy, I. (2003) Interaction of Copper and Zinc with Allophane and Organic Matter in the B Horizon of an Andosol. European Journal of Soil Science, 54, 357-364. https://doi.org/10.1046/j.1365-2389.2003.00530.x
Schulin, R., Johnson, A. and Frossard, E. (2010) Trace Element-Deficient Soils. In: Hooda, P.S., Ed., Trace Elements in Soils, Blackwell Publishing, Hoboken, 175-194. https://doi.org/10.1002/9781444319477.ch9
Singh, B. and Gilkes, R.J. (1991) Phosphorus Sorption in Relation to Soil Properties for the Major Soil Types of South-Western Australia. Australian Journal of Soil Research, 29, 603-618. https://doi.org/10.1071/SR9910603
Gilkes, R.J. and Hughes, J.C. (1994) Sodium-Fluoride pH of South-Western Australian Soils as an Indicator of P Sorption. Australian Journal of Soil Research, 32, 755-766. https://doi.org/10.1071/SR9940755
Borggaard, O.K., Jorgensen, S.S., Moberg, J.P. and Raben-Lange, B. (1990) Influence of Organic Matter on Phosphate Adsorption by Aluminium and Iron Oxides in Sandy Soils. Journal of Soil Science, 41, 443-449. https://doi.org/10.1111/j.1365-2389.1990.tb00078.x
Debicka, M., Kocowicz, A., Weber, J. and Jamroz, E. (2015) Organic Matter Effects on Phosphorous Sorption in Sandy Soils. Archives of Agronomy and Soil Science, 62, 840-855. https://doi.org/10.1080/03650340.2015.1083981
Harsh, J. (2005) Amorphous Materials. In: Hillel, D., Hatfield, J.L., Powlson, D.S., Rosenzweig, C., Scow, K.M., Singer, M.J. and Sparks, D.L., Eds., Encyclopedia of Soils in the Environment, Elsevier, Amsterdam, 64-71. https://doi.org/10.1016/B0-12-348530-4/00207-1
Zhao, X., Zhong, X. and Li. G. (2006) The Evaluation of Phosphorus Leaching Risk of 23 Chinese Soils II. The Relationships between Soils Properties, P Adsorption Characteristics and the Leaching Criterion. Acta Ecologica Sinica, 26, 3011.
Parfitt, R.L., Hume, L.J. and Sparling, G.P. (1989) Loss of Availability of Phosphate in Some New Zealand Soils. Journal of Soil Science, 40, 371-382. https://doi.org/10.1111/j.1365-2389.1989.tb01281.x
Wada, S.I. and Wada, K. (1977) Density and Structure of Allophane. Clay Minerals, 12, 289-298. https://doi.org/10.1180/claymin.1977.012.4.02
Van Ranst, E., Utami, S.R., Vanderdeelen, J. and Shamshuddin, J. (2004) Surface Reactivity of Andosols on Volcanic Ash along the Sunda Arc Crossing Java Island, Indonesia. Geoderma, 123, 193-203. https://doi.org/10.1016/j.geoderma.2004.02.005
Schwertmann, U. and Taylor, R.M. (1989) Iron Oxides. In: Dixon, J.B. and Weed S.B., Eds., Minerals in Soil Environments, 2nd Edition, Soil Science Society of America, Inc., Madison, 379-438.
Colombo, C., Sellitto, M.V., Palumbo, G., Terribile, F. and Stoops, G. (2007) Characteristics and Genesis of Volcanic Soils from South Central Italy: Mt. Gauro (Phlegraean Fields, Campania) and Vico Lake (Latium). In: Arnalds, O., Bartoli, F., Buurman, P., óskarsson, H., Stoops, G. and García-Rodeja, E., Eds., Soils of Volcanic Regions in Europe, Springer-Verlag, Heidelberg, Berlin, 197-229. https://doi.org/10.1007/978-3-540-48711-1_18
Alvarado, A. and Buol, S.W. (1985) Field Estimation of Phosphate Retention by Andepts. Soil Science Society of America Journal, 49, 911-914. https://doi.org/10.2136/sssaj1985.03615995004900040024x