Authors :
Omotayo F.O.; Adejoro S.A.; Adeyemo A.J. Femi-Ojamo F. A
Volume/Issue :
Volume 10 - 2025, Issue 2 - February
Google Scholar :
https://tinyurl.com/3vca77v6
Scribd :
https://tinyurl.com/5n7r9jwp
DOI :
https://doi.org/10.38124/ijisrt/25feb1578
Note : A published paper may take 4-5 working days from the publication date to appear in PlumX Metrics, Semantic Scholar, and ResearchGate.
Abstract :
This study aimed to evaluate the effects of organic and inorganic fertilizers on nitrogen mineralization processes
in bell pepper production. The experiment was conducted in a screen house at the Teaching and Research Farm of the
Federal University of Technology, Akure, Nigeria, using a Completely Randomized Design with three replications. Six
fertilizer treatments were applied to the soil: poultry manure, cow dung, neem seed-based fertilizer, single-super phosphate
(SSP), urea, and a control. Data were collected on plant height, number of leaves, fruit count, and fruit weight over 12 weeks.
Nitrogen mineralization processes, including arginine ammonification, nitrification, and denitrification, were assessed in the
Crop, Soil, and Pest Management Laboratory. Soil physical and chemical properties were also analyzed. Analysis of Variance
(ANOVA) revealed significant differences in growth parameters among treatments. Plants treated with organomineral
fertilizer (NSBF) exhibited the highest plant height, while SSP treatment resulted in higher leaf numbers. Control plants
showed the lowest growth metrics. Poultry manure and neem seed-based fertilizer significantly enhanced fruit number and
weight, with control plants yielding the least. The results indicate that applying organic fertilizers at recommended rates
significantly improved ammonification, nitrification, and carbon content, while reducing denitrification rates in the soil. The
integration of organomineral and organic fertilizers not only increased plant height but also positively influenced microbial
activity, including ammonifying and nitrifying bacteria. In conclusion, the application of organic fertilizers, particularly
neem seed-based fertilizer, is crucial for enhancing soil health and optimizing sustainable bell pepper production.
Keywords :
Bell Pepper, Arginine Ammonification, Nitrification, Denitrification, Neem-Seed Based Fertilizer, Mineralization.
References :
- Alef K, Kleiner D (1987) Applicability of arginine ammonification as an indicator of microbial activity in different soils. Biol Fertil SOILS 5:148-151
- Alef, K., & Nannipieri, P. (1995). Methods in Applied Soil Microbiology and Biochemistry Academic Press.
- Alexander, M. (1977). Introduction to soil Microbiology (2nd ed.). John Wiley & Sons, Inc.
- AOAC (1990). Official Methods of Analysis of the Association of Official Analytical Chemists. 15th ed. Arlington, VA: AOAC International. Method 9.3.3 & 9.5.3.
- Byrnes, R, C., Nunez, J., Arenas, L., Rao, L., Trujillo, C., Alvarez, C., et al. (2017). Biological nitrificartion inhibition by Brachiaria grasses mitigates soil nutrous oxide emissions from bovine urine patches. Soil Biol. Biochem. 107, 156-163, doi: 10.1016/j.soilbio.2016.12.029
- Cantarella, H., Otto, R., Soares, J.R., and De Brito Silva, A. G. (2018). Agronomic efficiency of NBPT as a urease inhibitor: a review J. Adv. Res. 13, 19-27. doi:10.1016/j.jare.2018.05.008
- Dangi SR, Stahl PD, Wick AF, Ingram Lj, Buyer JS. 2012. Soil microbial community recovery in reclaimed soils on a surface coal mine site. Soil SciSoc Am J 76:915-924
- Goulding, K. (2016). Soil acidification and the importance of liming agricultural soils with particular reference to the United Kingdom. Soil Use Manag. 32, 390-399. doi:10.1111/sum.12270
- Grubben GJH, El Tahir IM (2004). Capsicum annuum L. In: Grubben, GJH & OA Denton (eds). PROTA 2: Vegetables/Legumes. (CD-Rom). PROTA, Wegeningen, The Netherlands.
- Huang, D., Zhang X., Guo, Y., & Li, J. (2020) Microbial dynamics and soil physicochemical properties explain large-scale variations in soil organic carbon. Global Biogeochemical Cycles, 34(3). 508-524. https://doi.org/10.1029/2019GB006403
- Huang, R.; Wang, Y.; Liu, J.; Zhang, Y. Partial substitution of chemical fertilizer by organic materials changed the abundance, diversity, and activity of NirS-Type denitrifying bacteial communities in a vegetable soil. Appl. Soil Ecol. 2020, 152, 103589. (Google Scholar).
- Jones, S.K., Bechmann, M., & Ortiz, R. (2021). Assessing the effect of farming system diversification on biodiversity and yield outcomes. Basic and Applied Ecology, 67, 14-31. http://doi.org/10.1016/j.baae.2021.04.004
- Kareem, I., Akinrinde, E.A., Oladosu, Y., Eifediyi, E. K., Abdulmaliq, S.Y., Alasinrin, S. Y., Kareem, S. A., & Adekola, O. F. (2021). Enhancement of phosphorus uptake, growth, and yield of crops with single super phosphate fertilizer. Agronomy, 11 (3), 436. https://doi.org/10.3390/agronomy11030436
- Kelley, W.T., G.E. Boyhan, K.A. Harrison, D.M. Granberry and D.B. Langston et al., 2009. Commercial Pepper Production Handbook. The University of Georgia, Georgia.
- Kresovic M, Licina V (2002) The determination of potential ammonification in soil by arginine method. J Agric Sci 47 (2):129-135
- Lacano C., Decock C., and S. Wilson. Defining and managing for healthy vineyard soils, interactions with the concept of terroir, “Frontiers in Environmental Science, vol. 8, 2020.
- Leja, M., G. Wyzgolik and I. Kaniiska, 2008. Changes of some biochemical parameters during the development of sweet pepper fruits. Mokslo Darbai J., 27: 277-283
- Marinkovic J, Bjelic D, Vasin J, Tintor B, Ninkov J (2012) The distribution of microorganisms in different types of agricultural soils in the Vjvodina province Res J agric Sci 44(3):73-78
- Marinkovic, N., Stojanovic, J., & Banjac, M. (2012). Impact of agricultural soil usage on the activity and abundance of ammonifying bacteria in selected soils from Poland. SpringerPlus, 1, 29. https://doi.org/10.1186/2193-1801-1-29
- Nourbaksh, F., & Alinejadian, A. (2009). Kinetic approach to evaluate the effects of 3,3’-diaminobenzidine on N mineralization in soils. Plants Soil and Environment, 56 (9), 429-433. https://doi.org/10.17221/1074-PLSOIL
- Olowokere, O. (2004). Effects of organic and organomineral fertilizers on soil properties and growth of crops. Journal of Agricultural Science and Environment
- Serri, M., Abbassi, S. & Souri, M. K. (2021). Growth, biochemical quality , and antioxidant capacity of coriander leaves under organic and inorganic fertilization programs. Chemical and Biological Technologis in Agriculture, 8(1), Article 33. https://doi.org/10.1186/s40538-021-00228-5.
- Smith, P., Soussana, J.F., Angers, D., Schipper, L., Chenu, C., Rasse, D.P., Bustamante, M. (2019). How to measure, report, and verify soil carbon sequestration for atmospheric greenhouse gas removal. Global Change Biology, 26(1), 219-241. https://doil.org/10.1111/gcb.14815.
- Tiedje, J. M. (1988). Denitrifiation. In Methods of Soil Analysis: Part 2- Microbiological and Biochemical Properties (2nd ed., pp. 907-947). Soil Science Society of America, Inc.
- Zaman M, Matsushima M, Chang SX, Inubushi K, Nguyen L, Gotao S, Kaneko F, Yoneyama T (2004) Nitrogen mineralization, N2O production and soil microbiological proprties as affected by long-term applications of sewage sludge composts. Biol Fertil Soils 40:101-109. doi:10.1007/s00374-004-0746-2
- Zhai, Y., Zhao, X., Teng, Y., Li, X., Zhang, J., Wu, J., et al. (2017). Groundwater nitrate pollution and human health risk assessment by using HHRA model in an agricultural area, NE China. Ecotocicol. Environ. Saf. 137, 130-142. doi: 10.1016/j.ecoenv.2016.11.010
- Zhang, Y., Gao, X., Shen, Z., Zhu, C., Jiao, Z., Li, R., et al (2019). Pre-colonization of PGPR triggers rhizosphere microbiota succession associated with crop yield enhancement. Plant Soil 439, 553-567. Doi:10.1007/s11104-019-04055-4.
This study aimed to evaluate the effects of organic and inorganic fertilizers on nitrogen mineralization processes
in bell pepper production. The experiment was conducted in a screen house at the Teaching and Research Farm of the
Federal University of Technology, Akure, Nigeria, using a Completely Randomized Design with three replications. Six
fertilizer treatments were applied to the soil: poultry manure, cow dung, neem seed-based fertilizer, single-super phosphate
(SSP), urea, and a control. Data were collected on plant height, number of leaves, fruit count, and fruit weight over 12 weeks.
Nitrogen mineralization processes, including arginine ammonification, nitrification, and denitrification, were assessed in the
Crop, Soil, and Pest Management Laboratory. Soil physical and chemical properties were also analyzed. Analysis of Variance
(ANOVA) revealed significant differences in growth parameters among treatments. Plants treated with organomineral
fertilizer (NSBF) exhibited the highest plant height, while SSP treatment resulted in higher leaf numbers. Control plants
showed the lowest growth metrics. Poultry manure and neem seed-based fertilizer significantly enhanced fruit number and
weight, with control plants yielding the least. The results indicate that applying organic fertilizers at recommended rates
significantly improved ammonification, nitrification, and carbon content, while reducing denitrification rates in the soil. The
integration of organomineral and organic fertilizers not only increased plant height but also positively influenced microbial
activity, including ammonifying and nitrifying bacteria. In conclusion, the application of organic fertilizers, particularly
neem seed-based fertilizer, is crucial for enhancing soil health and optimizing sustainable bell pepper production.
Keywords :
Bell Pepper, Arginine Ammonification, Nitrification, Denitrification, Neem-Seed Based Fertilizer, Mineralization.