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Improving Rice Productivity in Liberia through Integrated Soil Fertility Management (ISFM)

DOI: 10.4236/oalib.1114853, PP. 1-21

Subject Areas: Agricultural Science

Keywords: Improving, Rice, Productivity, Liberia, Integrated, Soil, Fertility

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Abstract

Agriculture departments in Liberia, along with partner organizations in the development of the agricultural sector, are using Integrated Soil Fertility Management (ISFM) modeling, soil diagnostics, and sensitivity analysis to address soil fertility issues and thereby improving rice productivity. Through a Mitscherlich, based yield model, the study investigated nitrogen response under differing organic matter inputs, whereas the nutrient, use efficiency (NUE) and carbon (SOC) long, term soil organic carbon (SOC) trajectories were utilized for quantifying the agronomic and ecological benefits. The combination of 24 t/ha of organic matter along with the medium nitrogen (6090 kg/ha) gave 2045% more yields compared to the use of only mineral fertilizer and also increased NUE by 815%. The SOC results indicate that the continued supply of organic matter helps to reduce carbon loss and maintain soil structure, where 4 t/ha OM contributes to SOC growth by more than 0.5 percentage points over ten years. Additionally, the sensitivity analysis suggests that system performance is highly affected by rainfall variation (20%) and soil acidity (pH less than 5.5), which means that water management and the application of phosphorus and lime should be considered carefully. Fertilizer subsidies, banded P vouchers, labor, saving OM strategies, and ISFM starter kits, are among the measures that fertilizer policy scenarios point to as greatly facilitating the adoption of farmers, among other things. Generally, the results of the study highlight ISFM as a strong, environmentally friendly, and economically efficient method for enhancing sustainable rice intensification in Liberia, which holds definite soil fertility policy, extension systems, and agricultural development planning at the national level implications.

Cite this paper

Bee, M. W. (2026). Improving Rice Productivity in Liberia through Integrated Soil Fertility Management (ISFM). Open Access Library Journal, 13, e14853. doi: http://dx.doi.org/10.4236/oalib.1114853.

References

[1]  FAO (2019) FAOSTAT Statistical Database. Food and Agriculture Organization of the United Nations.
[2]  Ministry of Ag-riculture, Liberia (2020) National Rice Development Strategy II (NRDS II). Government of Liberia.
[3]  Sanchez, P.A. (2002) Soil Fertility and Hunger in Africa. Science, 295, 2019-2020. https://doi.org/10.1126/science.1065256
[4]  Vanlauwe, B. and Giller, K.E. (2006) Popular Myths around Soil Fertility Management in Sub-Saharan Africa. Agriculture, Ecosystems & Environment, 116, 34-46. https://doi.org/10.1016/j.agee.2006.03.016
[5]  Vanlauwe, B., Kihara, J., Chivenge, P., Pyp-ers, P., Coe, R. and Six, J. (2015) Agronomic Use Efficiency of N, P, and K Fertilizers in Sub-Saharan Africa. Nutrient Cycling in Agroecosystems, 102, 297-318.
[6]  Bationo, A., Waswa, B., Kihara, J. and Kimetu, J. (2007) Advances in Integrated Soil Fertility Management in Sub-Saharan Africa. Springer.
[7]  Sanginga, N., Woomer, P.L., Vanlauwe, B. and Woolmer, P. (2009) Integrated Soil Fertility Management in Africa. TSBF Institute.
[8]  Palm, C.A., Myers, R.J.K. and Nandwa, S.M. (2001) Combined Use of Organic and Inorganic Nutrient Sources. In: Buresh, R.J., Ed., Replenishing Soil Fertility in Africa, SSSA, 193-218.
[9]  Giller, K.E. (2002) Targeting Management of Organic Resources and Mineral Fertilizers. CA-BI.
[10]  Lal, R. (2005) Enhancing Crop Yields in the Developing Countries through Restoration of the Soil Organic Carbon Pool in Agricultural Lands. Land Degradation & Development, 17, 197-209. https://doi.org/10.1002/ldr.696
[11]  Andriesse, W. (1986) Area and Distribution of Inland Valleys in Sierra Leone. IL-RI.
[12]  Schoonover, J.E. and Crim, J.F. (2015) An Introduction to Soil Concepts and the Role of Soils in Watershed Man-agement. Journal of Contemporary Water Research & Education, 154, 21-47. https://doi.org/10.1111/j.1936-704x.2015.03186.x
[13]  Bremner, J.M. and Mulvaney, C.S. (1982) Nitrogen-Total. In: Alban, L.A., Ed., Methods of Soil Analysis, ASA & SSSA, 595-624.
[14]  Libohova, Z., Seybold, C.A., Wysocki, D.A., Hoover, Y. and Ficklin, D.L. (2019) Variability of Soil pH and Nutrient Availability. Geoderma, 353, 357-369.
[15]  Kamara, A.Y., Ekeleme, F., Chikoye, D. and Omoigui, L.O. (2018) Soil Acidity and Crop Productivity in West Africa. Soil & Tillage Research, 181, 1-10.
[16]  Craine, J.M., Morrow, C. and Stock, W.D. (2008) Nutrient Concentration Ratios and Co-Limitation in South African Grasslands. New Phytologist, 179, 829-836. https://doi.org/10.1111/j.1469-8137.2008.02513.x
[17]  Cassman, K.G., Dobermann, A., Walters, D.T. and Yang, H. (2003) Meeting Cereal Demand While Protecting Natural Resources and Improving Environmental Quality. Annual Review of Environment and Resources, 28, 315-358. https://doi.org/10.1146/annurev.energy.28.040202.122858
[18]  Sileshi, G., Mafongoya, P.L., Chintu, R. and Akinnifesi, F.K. (2010) Yield Gaps with Nutrient Inputs and Rainfall. Field Crops Research, 118, 1-13.
[19]  Agyare, W.A., Diogo, R.V.C. and Forkuor, G. (2016) Modeling Water-Nutrient Interactions. Agricultural Water Management, 177, 250-263.
[20]  Saito, K., Nelson, A., Zwart, S.J., Niang, A., Sow, A., Yoshida, H. and Wopereis, M.C.S. (2019) Yield Gaps in Rainfed Rice. Agricul-tural Systems, 176, Article ID: 102660.
[21]  Fofana, B., Wopereis, M.C.S., Bationo, A. and Breman, H. (2020) Fertility Management in Rice Systems. Field Crops Research, 250, Article ID: 107757.
[22]  Wopereis, M.C.S., Johnson, D.E., Ahmadi, N., Tollens, E. and Jalloh, A. (2013) Realizing Africa’s Rice Promise. CABI.
[23]  Tittonell, P. and Giller, K.E. (2013) When Yield Gaps Are Poverty Traps: The Paradigm of Ecological Intensification in African Smallholder Agriculture. Field Crops Research, 143, 76-90. https://doi.org/10.1016/j.fcr.2012.10.007
[24]  Misiko, M., Tittonell, P., Ramisch, J. and Franzel, S. (2011) Integrating ISFM Technologies. Experimental Agriculture, 47, 1-14.
[25]  Adjei-Nsiah, S. and Kermah, M. (2012) Climate Variability and Land Management. Soil & Tillage Research, 124, 77-84.
[26]  Nair, P.R. (2007) The Coming of Age of Agroforestry. Journal of the Science of Food and Agriculture, 87, 1613-1619. https://doi.org/10.1002/jsfa.2897
[27]  Roy, R.N., Finck, A., Blair, G. and Tandon, H. (2006) Plant Nutrition for Food Secu-rity. FAO.
[28]  Stoorvogel, J.J. and Smaling, E.M.A. (1998) Research on Soil Fertility Decline in Tropical Environments: In-tegration of Spatial Scales. Nutrient Cycling in Agroecosystems, 50, 151-158. https://doi.org/10.1023/a:1009732126336
[29]  Horna, D., Timpo, S.E. and Gruère, G. (2007) Marketing Underutilized Species. IFPRI Discussion Paper.
[30]  Dobermann, A. and Fairhurst, T. (2000) Rice: Nutrient Disorders and Nutrient Man-agement. IRRI.
[31]  AfricaRice (2018) Rice Production Systems in Africa. Africa Rice Center.
[32]  Haefele, S.M., Wopereis, M.C.S., Donovan, C. and Maubuisson, J. (2003) Improving Nutrient Use Efficiency in Rice. Field Crops Research, 84, 171-186.
[33]  Becker, M. and Johnson, D.E. (1999) Rice Yield Response to Nutrient Management. Nutrient Cycling in Agroecosystems, 53, 93-106.
[34]  Pieri, C. (1989) Fertility of Soils: A Future for Farming in the West African Savannah. Springer.
[35]  Smaling, E.M.A., Nandwa, S.M. and Janssen, B.H. (1997) Soil Fertility in Africa Is at Stake. Soil Science, 162, 591-599.
[36]  Giller, K.E., Rowe, E.C., de Ridder, N. and van Keulen, H. (2006) Resource Use Dynamics in Smallholder Systems. Agricultural Systems, 88, 1-25.
[37]  Tittonell, P., Corbeels, M., van Wijk, M.T., Vanlauwe, B. and Giller, K.E. (2008) Combining Organic and Mineral Fertilizers. Agricultural Systems, 97, 96-107.
[38]  van Ittersum, M.K., Cassman, K.G., Grassini, P., Wolf, J., Tittonell, P. and Hochman, Z. (2013) Yield Gap Analysis with Local to Global Relevance—A Review. Field Crops Research, 143, 4-17. https://doi.org/10.1016/j.fcr.2012.09.009
[39]  Lobell, D.B. and Gourdji, S.M. (2012) Climate Change Impacts on Crop Productivity. Annual Review of Environment and Resources, 37, 489-513.
[40]  Rockström, J., Karlberg, L., Wani, S.P., Barron, J., Hatibu, N., Oweis, T., et al. (2010) Managing Water in Rainfed Agriculture—The Need for a Paradigm Shift. Agricultural Water Management, 97, 543-550. https://doi.org/10.1016/j.agwat.2009.09.009

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