Residual Effects of Phosphate Amendments on Rainfed Rice (Oryza sativa L.) Nutrition and Soil Properties in Three Agroecological Zones of C?te d’Ivoire
A study was conducted in C?te d’Ivoire to assess the after-effect of phosphate amendments on rice yields and soil properties. Eight types of amendments, composed of Moroccan phosphate rock (PRM) and triple superphosphate were tested in three agroecological zones over three consecutive years of cultivation. This study revealed that the application of Moroccan phosphate rock (PRM) and/or triple superphosphate (TSP) did not significantly affect soil cation exchange capacity (CEC) and organic carbon (Corg) content. However, there was a negative residual effect of PRM-rich treatments on soil pH and K and N content, but the impact varies depending on the characteristics of the soils studied. Furthermore, nutrient losses, notably nitrogen from ?17.5 to ?267.7 kg/ha and potassium (?0.1 to 0.7 kg/ha), were observed in all treatments. Only phosphorus showed a positive balance of +49.56 to +52 kg/ha in PRM-rich treatments. Treatment T3, composed of 80% RPM and 20% TSP, was the most effective in all zones, with a relative increase in grain yields of over 100% compared to the control. These results suggest that the input of natural phosphate rock can significantly improve rice yields and soil properties in the studied agroecological zones in C?te d’Ivoire.
References
[1]
Agegnehu, G., Amede, T., Erkossa, T., Yirga, C., Henry, C., Tyler, R., et al. (2021) Extent and Management of Acid Soils for Sustainable Crop Production System in the Tropical Agroecosystems: A Review. ActaAgriculturaeScandinavica, SectionB—Soil&PlantScience, 71, 852-869. https://doi.org/10.1080/09064710.2021.1954239
[2]
Kotchi, V., Yao-Kouamé, A. and Diatta, S. (2010) Réponse de cinq variétés de riz à l’apport de phosphate naturel de Tilemsi (Mali) sur les sols acides de la région for-estière humide de Man (Côte d’Ivoire). Journal of Applied Biosciences, 31, 1895-1905.
[3]
Soro, D., Ayoliê, K., Bi Zro, F.G., Yêboua, F.Y., Kouadio, H.K., Bakayoko, S., et al. (2015) Impact of Organic Fertilization on Maize (Zea mays L.) Production in a Ferralitic Soil of Centre—West Cote D’ivoire. JournalofExperimentalBiologyandAgriculturalSciences, 3, 556-565. https://doi.org/10.18006/2015.3(6).556.565
[4]
Gnahoua, J.G., Ouattara, M.L.M.S., Coulibali, Z., Diomandé, L.B. and Soro, Y.R. (2023) Integrated Soil Fertility Management: A Promising Pathway for Sustainable Intensification of Smallholder Cotton Farming Systems in Côte D’ivoire. AsianJournalofResearchinCropScience, 8, 51-58.
[5]
Koné, B., Ettien, J.B., Amadji, G.L., Diatta, S. and Camara, M. (2010) Effets d’engrais phosphatés de différentes origines sur la production rizicole pluviale sur des sols acides en zone de forêt semi-montagneuse sous climats tropicaux Cas des hyper-dystric ferralsols sous jachères en Côte d’Ivoire. EtudeetGestiondessols, 17, 7-17.
[6]
Kouadio, E.N., Koffi, E.K., Julien, K.B., Messoum, G.F., Brou, K. and N’guessan, D.B. (2018) Diagnostic de l’Etat de Fertilité des Sols Sous Culture Cotonnière Dans les Principaux Bassins de Production de Côte d’Ivoire. EuropeanScientificJournal, ESJ, 14, 221. https://doi.org/10.19044/esj.2018.v14n33p221
[7]
Reddy, M.S., Kumar, S., Babita, K. and Reddy, M.S. (2002) Biosolubilization of Poorly Soluble Rock Phosphates by Aspergillus tubingensis and Aspergillus niger. BioresourceTechnology, 84, 187-189. https://doi.org/10.1016/s0960-8524(02)00040-8
[8]
Xiao, C.Q., Chi, R.A., Li, W.S. and Zheng, Y. (2011) Biosolubilization of Phosphorus from Rock Phosphate by Moderately Thermophilic and Mesophilic Bacteria. MineralsEngineering, 24, 956-958. https://doi.org/10.1016/j.mineng.2011.01.008
[9]
Carpenter, S.R. and Bennett, E.M. (2011) Reconsideration of the Planetary Boundary for Phosphorus. EnvironmentalResearchLetters, 6, Article ID: 014009. https://doi.org/10.1088/1748-9326/6/1/014009
[10]
Husson, O., Tano, B.F. and Saito, K. (2022) Designing Low-Input Upland Rice-Based Cropping Systems with Conservation Agriculture for Climate Change Adaptation: A Six-Year Experiment in M’bé, Bouaké, Côte D’ivoire. FieldCropsResearch, 277, Article ID: 108418. https://doi.org/10.1016/j.fcr.2021.108418
[11]
Smalberger, S.A., Chien, S.H., Singh, U. and Henao, J. (2010) Relative Agronomic Effectiveness of Phosphate Rock Compared with Triple Superphosphate for Initial Canola, Wheat, or Ryegrass, and Residual Wheat in Two Acid Soils. SoilScience, 175, 36-43. https://doi.org/10.1097/ss.0b013e3181c752dd
[12]
Koné, B. (2023) Combined Effect of Morocco Rock Phosphate and Chemical Fertilizer in Low-Land Rice Production in Guinea Savanna Zone of Côte D’ivoire: Replenishment of Degraded Fluvisol for Boosting Rice Production. JournalofWasteManagement&RecyclingTechnology, 1, 1-7. https://doi.org/10.47363/jwmrt/2023(1)112
[13]
Bongoua-Devisme, A.J. (2009) Implications des communautés bactériennes fer-ri-réductrices et des paramètres environnementaux dans le fonctionnement et la qualité des sols de rizières (Thaïlande et Côte d’Ivoire). Thèse de doctorat en Science des sols, Université Henri Poincaré-Nancy 1.
[14]
Bongoua-Devisme, A.J., Kpan, W.H., Bahan, F.M.L., Koné, B., Kouadio, K.H., Adou, K.P., et al. (2024) Residual Effect of Phosphate Amendments on Agronomic Parameters of Rainfed Rice in Three Agroecological Zones of Côte D’ivoire. AsianJournalofSoilScienceandPlantNutrition, 10, 57-71. https://doi.org/10.9734/ajsspn/2024/v10i3319
[15]
Kpan, W.H., Bongoua-Devisme, A.J., Kouadio, K.H., Kone, B. and Bahan, F.M.L. (2023) Response of Lowland Rice to Phosphate Amendments in Three Acidics Agroecological Zones of Côte D’ivoire: Man-gagnoa-bouaké. InternationalJournalofEnvironment, AgricultureandBiotechnology, 8, 135-144. https://doi.org/10.22161/ijeab.85.18
[16]
R Core Team (2023) R: A Language and Environment for Statistical Computing. R Foundation for Statistical Computing. https://www.R-project.org/
[17]
Wang, Z., Zhang, F., Xiao, F., Tao, Y., Liu, Z., Li, G., et al. (2018) Contribution of Mineral Nutrients from Source to Sink Organs in Rice under Different Nitrogen Fertilization. PlantGrowthRegulation, 86, 159-167. https://doi.org/10.1007/s10725-018-0418-0
[18]
Zheng, Y., Chen, H., Yang, G., Wang, R., Farhan, N., Li, C., et al. (2023) Combined Effect of Nitrogen and Phosphorous Fertiliser on Nitrogen Absorption and Utilisation in Rice. Plant, SoilandEnvironment, 69, 25-37. https://doi.org/10.17221/420/2022-pse
[19]
Liao, Y., Zheng, S., Lu, Y., Yang, Z., Nie, J. and Xie, J. (2010) Long-Term Effect of Fertilizer Application on Rice Yield, Potassium Uptake in Plants, and Potassium Balance in Double Rice Cropping System. FrontiersofAgricultureinChina, 4, 406-415. https://doi.org/10.1007/s11703-010-1043-5
[20]
Liu, J., Wang, D., Yan, X., Jia, L., Chen, N., Liu, J., et al. (2024) Effect of Nitrogen, Phosphorus and Potassium Fertilization Management on Soil Properties and Leaf Traits and Yield of Sapindusmukorossi. FrontiersinPlantScience, 15, Article ID: 1300683. https://doi.org/10.3389/fpls.2024.1300683
[21]
Massawe, P. and Mrema, J. (2017) Effects of Different Phosphorus Fertilizers on Rice (Oryza sativa L.) Yield Components and Grain Yields. AsianJournalofAdvancesinAgriculturalResearch, 3, 1-13. https://doi.org/10.9734/ajaar/2017/37202
[22]
Nishigaki, T., Tsujimoto, Y., Rakotoson, T., Rabenarivo, M., Andriamananjara, A., Asai, H., et al. (2021) Soil Phosphorus Retention Can Predict Responses of Phosphorus Uptake and Yield of Rice Plants to P Fertilizer Application in Flooded Weathered Soils in the Central Highlands of Madagascar. Geoderma, 402, Article ID: 115326. https://doi.org/10.1016/j.geoderma.2021.115326
[23]
Akassimadou, F.E., Hien, M.P., Bouadou Oi, F.B., Bolou Bi, E.B., Bongoua, J.A., Ettien, J.D., et al. (2017) Efficiences Des Nutriments P et K En Riziculture Irriguée Dans Un Bas-Fond Secondaire En Zone De Savane Guinéenne De La Côte d’Ivoire. EuropeanScientificJournal, ESJ, 13, 432. https://doi.org/10.19044/esj.2017.v13n36p432
[24]
Aissa, A.D. and Mhiri, A. (2001) Fertilisation phospho-potassique du blé dur en culture intensive en Tunisie. 5 p.
[25]
Boukcim, H. and Mousain, D. (2001) Effets de la fertilisation phosphatée sur la myco-rhization, la croissance et la nutrition en phosphore et en azote de semis de Cèdre (Cedrus atlantica Manetti) inoculés en pépinière par Tricholoma tridentinum Sing. var. cedretorum Bon. Annals of Forest Science, 58, 289-300. https://doi.org/10.1051/forest:2001127
[26]
Nobile, C. (2017) Phytodisponibilité du phosphore dans les sols agricoles de La Réu-nion fertilisés sur le long-terme avec résidus organiques: la dose d’apport est-elle le seul déterminant à prendre en compte? Thèse de Doctorat en Sciences Agricoles, Université de La Réunion, 168-178.
[27]
Mekhtoub, K. (2003) L’effet de la fertilisation phospho-potassique sur le développe-ment et la nutrition minérale (n.p.i0) de la plante du pois Chiche Cicerarietinum L. Recherche Agronomique, 7, 5-11. https://www.asjp.cerist.dz/en/article/67761
[28]
Bihari, B., Singh, Y.K., Shambhavi, S., Mandal, J., Kumar, S. and Kumar, R. (2021) Nutrient Use Efficiency Indices of N, P, and K under Rice-Wheat Cropping System in LTFE after 34th Crop Cycle. JournalofPlantNutrition, 45, 123-140. https://doi.org/10.1080/01904167.2021.1943674
[29]
Kanabo, I.A.K. and Gilkes, R.J. (1987) The Role of Soil Ph in the Dissolution of Phosphate Rock Fertilizers. FertilizerResearch, 12, 165-173. https://doi.org/10.1007/bf01048916
[30]
Ouattara, T.V., Kassin, K.E., Koko, L.J., Tahi, G.M., Assi, M.E., Amari, G., Dick, E. and Camara, M. (2017) Effets de la fertilisation organo-phosphatée sur la biodisponibilité du phosphore, la teneur en aluminium et le ph des sols sous cacaoyers dans la région de Divo en Côte d’ivoire. Journal of Applied Biosciences, 118, 11754-11767. http://dx.doi.org/10.4314/jab.v118i1.2
[31]
Dejene, M., Abera, G. and Desalegn, T. (2023) The Effect of Phosphorus Fertilizer Sources and Lime on Acidic Soil Properties of Mollic Rhodic Nitisol in Welmera District, Central Ethiopia. AppliedandEnvironmentalSoilScience, 2023, Article ID: 7002816. https://doi.org/10.1155/2023/7002816
[32]
Fertahi, S., Pistocchi, C., Daudin, G., Amjoud, M., Oukarroum, A., Zeroual, Y., et al. (2022) Experimental Dissolution of Biopolymer-Coated Phosphorus Fertilizers Applied to a Soil Surface: Impact on Soil pH and P Dynamics. AnnalsofAgriculturalSciences, 67, 189-195. https://doi.org/10.1016/j.aoas.2022.12.004
[33]
Manoharan, V., Loganathan, P. and Tillman, R.W. (1995) Effects of Long-Term Application of Phosphate Fertilisers on Soil Acidity under Pasture in New Zealand. In: Date, R.A., Grundon, N.J., Rayment, G.E. and Probert, M.E., Eds., Plant-SoilInteractionsatLowpH: PrinciplesandManagement, Springer, 85-91. https://doi.org/10.1007/978-94-011-0221-6_11
[34]
Ara, I., Islam, M.S., Kashem, M.A. and Osman, K.T. (2018) A Comparative Study of Phosphorus Availability in an Acidic Soil and an Alkaline Soil Amended with Organic and Inorganic Phosphorus Sources. JournalofSoilScienceandPlantNutrition, 18, 466-478. https://doi.org/10.4067/s0718-95162018005001402
[35]
Teles, A.P.B., Rodrigues, M. and Pavinato, P.S. (2020) Solubility and Efficiency of Rock Phosphate Fertilizers Partially Acidulated with Zeolite and Pillared Clay as Additives. Agronomy, 10, Article No. 918. https://doi.org/10.3390/agronomy10070918
[36]
Chouti, W.K., Atchichoe, W., Tometin, L. and Daouda, M. (2017) Biodisponibilité et mobilité du phosphore des sédiments de la lagune de Porto-Novo. JournalofAppliedBiosciences, 114, 11276-11288. https://doi.org/10.4314/jab.v114i1.1
[37]
Li, Z., Zhang, R., Xia, S., Wang, L., Liu, C., Zhang, R., et al. (2019) Interactions between N, P and K Fertilizers Affect the Environment and the Yield and Quality of Satsumas. GlobalEcologyandConservation, 19, e00663. https://doi.org/10.1016/j.gecco.2019.e00663
[38]
Hou, Q., Ni, Y., Huang, S., Zuo, T., Wang, J. and Ni, W. (2023) Effects of Substituting Chemical Fertilizers with Manure on Rice Yield and Soil Labile Nitrogen in Paddy Fields of China: A Meta-analysis. Pedosphere, 33, 172-184. https://doi.org/10.1016/j.pedsph.2022.09.003
[39]
Shi, L., Zheng, W., Lei, T., Liu, X. and Hui, M. (2021) The Effect of Different Soil Amendments on Soil Properties and on the Morphological and Physiological Characteristics of Chinese Cabbage. JournalofSoilScienceandPlantNutrition, 21, 1500-1510. https://doi.org/10.1007/s42729-021-00456-6
[40]
Yadvinder-Singh, Gupta, R.K., et al. (2008) Nitrogen and Residue Management Effects on Agronomic Productivity and Nitrogen Use Efficiency in Rice-Wheat System in Indian Punjab. NutrientCyclinginAgroecosystems, 84, 141-154. https://doi.org/10.1007/s10705-008-9233-8
[41]
Mahajan, A. and Gupta, R.D. (2009) Bio-Fertilizers: Their Kinds and Requirement in India. In: Integrated Nutrient Management (INM) ina Sustainable Rice-Wheat Cropping System, Springer, 75-100.
[42]
Mundschenk, E., Remus, R., Augustin, J., Wissuwa, M., Staudinger, C., Oburger, E., et al. (2024) Fertilizer Addition Modifies Utilization of Different P Sources in Upland Rice on Strongly P-Fixing Andosols. JournalofSoilScienceandPlantNutrition, 24, 3537-3549. https://doi.org/10.1007/s42729-024-01774-1
[43]
Abd El-Hafeez, A.M., Awadalla, H.A. and Ismail, S.A. (2013) Influence of Different Sources and Levels of Nitrogen and Rock Phosphate Addition on Maize Productivity and Soil Fertility. JournalofSoilSciencesandAgriculturalEngineering, 4, 1313-1328. https://doi.org/10.21608/jssae.2013.52903
[44]
Danso, I., Nuertey, B., Asamoah, P., Tetteh, F., Danso, F., Afari, P., et al. (2010) The Effect of Rock Phosphate on Soil Nutrient Dynamics, Growth, Development and Yield of Oil Palm in the Semi-Deciduous Forest Zone of Ghana. JournalofScienceandTechnology(Ghana), 30, 30-44. https://doi.org/10.4314/just.v30i1.53936
[45]
Ouattara, V.T., Konate, Z., Messoum, G.F., Kassin, E.K., Tahi, M.G., Koko, L.A., et al. (2019) Effets de la fertilisation organo-phosphatée sur la fertilité en matière organique et complexe adsorbant d’un ferralsol sous cacaoyers dans la région de Divo (Côte d’Ivoire). InternationalJournalofBiologicalandChemicalSciences, 12, 2901-2921. https://doi.org/10.4314/ijbcs.v12i6.33