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2025 | 59 | 180-192
Tytuł artykułu

Impact of combined application of urea and farm yard manure on the growth, yield and nitrate content of spinach (Spinacia oleracea L.) in the Nigerian northern Guinea savanna

Treść / Zawartość
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The type of fertilizer is considered for influencing spinach yield and level of nitrate concentration for normal crop consumption. This experiment investigates plant growth, yield, and nitrate content in spinach with different fertilizer types and levels. In a two-location field experiment involving three rates of farmyard organic manure (6, 8, and 10 t ha-1 of FYM) and three levels of N.P.K. fertilizers (100:30:30, 150:30:30, and 200:30:30), three combinations of the two kinds of fertilizers (3 t ha-1 FYM + 90 kg N ha-1, 4 t ha-1 FYM + 70 kg N ha-1, and 5 t ha-1 FYM + 50 kg N ha-1), including a control (without any fertilizer), were laid out in a randomized complete block design and replicated thrice. The result showed that spinach treated with urea fertilizer was superior to those treated with farmyard manure and the control but comparable to those treated with the combined application of the urea and farmyard manure. The relatively higher yield of 39,587.92 and 40,222.0 kg ha-1 and 36,895.21; 36,354.5 kg ha-1 were obtained from urea application and combined application of urea and farmyard manure at Samaru and Shika, respectively. The study monitored the amount of nitrate in spinach leaves at various intervals following sowing. The findings indicated a correlation between elevated nutrient concentration and nitrate accumulation in urea-fertilized plots. Plants treated with urea in Samaru and Shika had the greatest nitrate buildup (1627 and 1675 mg kg⁻¹). Although the nitrate content dropped with increasing levels of farmyard manure combined with urea fertilizer (1101 and 1206 mg kg-1), all amounts fell below the European Safety Union limits.
Rocznik
Tom
59
Strony
180-192
Opis fizyczny
Twórcy
autor
  • College of Agriculture and Animal Science, Mando, Division of Agricultural Colleges, Ahmadu Bello University, Zaria, Nigeria
autor
  • Samaru College of Agriculture, Division of Agricultural Colleges, Ahmadu Bello University, Zaria, Kaduna State, Nigeria
autor
  • Samaru College of Agriculture, Division of Agricultural Colleges, Ahmadu Bello University, Zaria, Kaduna State, Nigeria
autor
  • Department of Agronomy, Faculty of Agriculture, Bayero University Kano, Nigeria
autor
  • Department of Agronomy, Faculty of Agriculture, Ahmadu Bello University, Zaria, Nigeria
Bibliografia
  • [1] Ali, H.G., Hafez, M.M., Mahmoud, R., & Shafeek, M.R. (2013). Effect of Bio and chemical fertilizers on growth, yield and chemical properties of spinach plant (Spinacia oleracea L.). Middle East Journal of Agriculture Research, 2(1): 16-20
  • [2] Bian, Z., Wang, Y., Zhang, X., Li, T., Grundy, S., Yang, Q., & Cheng, R. (2020). A review of environment effects on nitrate accumulation in leafy vegetables grown in controlled environments. Foods, 9(6): 732. DOI 10.3390/foods9060732
  • [3] Bonyoucos, G.H. (1951). A Calibration of the Hydrometer for main mechanical analysis of soils. Agronomy Journal, 43, 434-38
  • [4] Bray, R.H. & Kurth, L.T. (1945). Determination of total organic and available forms of phosphorus in soils. Soil Sci. 59: 39-45
  • [5] Cuhel, J., Simek, M., Laughlin, R. J., Bru, D., Chèneby, D., Watson, C. J., & Philippot, L. (2010). Insights into the effect of soil pH on N(2)O and N(2) emissions and denitrifier community size and activity. Applied and Environmental Microbiology, 76(6), 1870–1878. https://doi.org/10.1128/AEM.02484-09
  • [6] Das, S., Mohapatra, A., Sahu, K., Panday, D., Ghimire, D., & Maharjan, B. (2024). Nitrogen dynamics as a function of soil types, compaction, and moisture. PloS ONE, 19(4), e0301296. https://doi.org/10.1371/journal.pone.0301296
  • [7] Duncan D.B. (1955). Multiple Range and Multiple F- test. Biometrics 11, 1-42.
  • [8] Abdelraouf, A. A. E. (2016). The Effects of Nitrogen Fertilization on Yield and Quality of Spinach Grown in High Tunnels. Alexandria Science Exchange Journal, 37, 488-496. doi: 10.21608/asejaiqjsae.2016.2517
  • [9] Farooq, M.S., Majeed, A., Ghazy, A., Fatima, H., Uzair, M., Ahmed, S., Murtaza, M., Fiaz, S., Khan, M.R., Al-Doss, A.A., & Attia, K.A. (2024). Partial replacement of inorganic fertilizer with organic inputs for enhanced nitrogen use efficiency, grain yield, and decreased nitrogen losses under rice-based systems of mid-latitudes. BMC Plant Biology, 24, 919. https://doi.org/10.1186/s12870-024-05629-w
  • [10] Ferraz-Almeida, R. (2024). Balance of Nitrate and Ammonium in Tropical Soil Conditions: Soil Factors Analyzed by Machine Learning. Nitrogen, 5(3), 732-745. https://doi.org/10.3390/nitrogen5030048
  • [11] Fu, P., Clanton, C., Demuth, K. M., Goodman, V., Griffith, L., Khim-Young, M., Maddalena, J., LaMarca, K., Wright, L. A., Schurman, D. W., & Kellner, J. R. (2024). Accurate Quantification of 0–30 cm Soil Organic Carbon in Croplands over the Continental United States Using Machine Learning. Remote Sensing, 16(12), 2217. https://doi.org/10.3390/rs16122217
  • [12] Gomez, K.A. & Gomez, A.A. (1984). Statistical Procedures for Agricultural Research 2nd Edn. John Wiley and Sons Inc, New York, U.S.A. ISBN: 13-9780471879312, Pp 680.
  • [13] Govindasamy, P., Muthusamy, S. K., Bagavathiannan, M., Mowrer, J., Jagannadham, P. T. K., Maity, A., Halli, H. M., G K, S., Vadivel, R., T K, D., Raj, R., Pooniya, V., Babu, S., Rathore, S. S., L, M., & Tiwari, G. (2023). Nitrogen use efficiency-a key to enhance crop productivity under a changing climate. Frontiers in Plant Science, 14, 1121073. https://doi.org/10.3389/fpls.2023.1121073
  • [14] Gülüt, K.Y., & Şentürk, G.G. (2024). Impact of nitrogen fertilizer type and application rate on growth, nitrate accumulation, and postharvest quality of spinach. Peer J, 12: e17726 DOI 10.7717/peerj.17726
  • [15] Han, K., Zhang, J., Wang, C., Yang, Y., Chang, Y., & Gao, Y. (2023). Changes in growth, physiology and photosynthetic capacity of spinach (Spinacia oleracea L) under different nitrate levels. PLoS ONE, 18 (3), 0283787
  • [16] Kakar, K., Nitta, Y., Asagi, N., Komatsuzaki, M., Shiotsu, F., Kokubo, T., & Xuan, T. D. (2019). Morphological analysis on comparison of organic and chemical fertilizerson grain quality of rice at different planting densities. Plant Production Science, 22(4), 510–518. https://doi.org/10.1080/1343943X.2019.1657777
  • [17] Kakar, K., Xuan, T. D., Noori, Z., Aryan, S., & Gulab, G. (2020). Effects of Organic and Inorganic Fertilizer Application on Growth, Yield, and Grain Quality of Rice. Agriculture, 10(11), 544. https://doi.org/10.3390/agriculture10110544
  • [18] Luetic S, Knezovic Z, Jurcic K, Majic Z, Tripkovic K, Sutlovic D. 2023. Leafy vegetable nitrite and nitrate content: potential health effects. Foods, 12(8), 1655 DOI 10.3390/foods12081655
  • [19] Luna Juncal, M.J., Masino, P., Bertone, E., & Stewart, R.A. (2023). Towards nutrient neutrality: A review of agricultural runoff mitigation strategies and the development of a decision-making framework. Science of The Total Environment, 874, 162408. https://doi.org/10.1016/j.scitotenv.2023.162408
  • [20] Lyu, H., Li, Y., Wang, Y., Wang, P., Shang, Y., Yang, X., Wang, F., & Yu, A. (2024). Drive soil nitrogen transformation and improve crop nitrogen absorption and utilization - a review of green manure applications. Frontiers in Plant Science, 14. https://doi.org/10.3389/fpls.2023.1305600
  • [21] Ma, J., Ali, S., Saleem, M. H., M, S., Yasin, G., Ali, B., Al-Ghamdi, A.A., Elshikh, M. S., Vodnar, D. C., Marc Romina, A., Rehman, A., Khan, M. N., Chen, F., & Ali, S. (2022). Short-term responses of Spinach (Spinacia oleracea L.) to the individual and combinatorial effects of Nitrogen, Phosphorus and Potassium and silicon in the soil contaminated by boron. Frontiers in Plant Science, 13, 983156. https://doi.org/10.3389/fpls.2022.983156
  • [22] Manga, A.A., Isa, K.I., Akinseye, F.M., Shittu, E.A., and Shehu, B.M. (2024). Growth and Yield response of Tomato (Solanum lycopersicum) as Impacted by Fertilization on the Saline and Sodic soils of Kano River Irrigation Project. World News of Natural Sciences, 57, 84-99
  • [23] Mgbenka, R.N., & Mbah, E.N. (2016). A Review of Smallholder Farming in Nigeria: Need for Transformation. International Journal of Agricultural Extension and Rural Development Studies, 3(2), 43-54
  • [24] Obatola, T. O., & Tanko, L. (2016). Comparative Economic Analysis of Irrigated and Rainfed spinach (Amaranthus cruentus) Production in Minna Metropolis, Niger State, Nigeria. Agrosearch, Research Journal of Applied Science, 16(1), 91-98. http://dx.doi.org/10.4314/agrosh.v16i1.8
  • [25] Plett, D. C., Ranathunge, K., Melino, V. J., Kuya, N., Uga, Y., & Kronzucker, H. J. (2020). The intersection of nitrogen nutrition and water use in plants: new paths toward improved crop productivity. Journal of Experimental Botany, 71(15), 4452–4468. https://doi.org/10.1093/jxb/eraa049
  • [26] Rahmatullah, H., Abdul K.A., Mujeeb, R.K. and Hukum K.H. (2019). Effect of Organic and inorganic fertilizers levels on spinach (Spinacia oleracea L) production and soil properties in Khos Province, Afghanistan. Internal Journal of Applied Research, 5(7), 83-87
  • [27] Snedecor, G.W., & Cochran, W.G. (1967). Statistical methods 6th edition, Ames, Lowa, the. Lowa State University.
  • [28] Walkley, A. & Black, I.A. (1934). An examination of degtjarf method for determination of soil organic matter and a proposed modification of the chromic acid titration method. Soil Science, 37, 29-38
  • [29] Xiao, C., Li, L., Luo, B., Liu, Y., Zeng, Z., Peng, L., & Luo, S. (2022). Different effects of the application of urea combined with nitrification inhibitor on cadmium activity in the rice-rape rotation system. Environmental Research, 214(1), 113800. https://doi.org/10.1016/j.envres.2022.113800
  • [30] Yeshiwas, Y., Zewdie, B.Y.B., Chekol, A. & Walle, A. (2018). Effect of Nitrogen Fertilizer and Farmyard Manure on Growth and Yield of Lettuce (Lactuca sativa L.). International Journal of Agricultural Research, 13, 74-79
  • [31] Zandvakili, O. R., Barker, A. V., Hashemi, M., & Etemadi, F. (2019). Biomass and nutrient concentration of lettuce grown with organic fertilizers. Journal of Plant Nutrition, 42(5), 444-457. https://doi.org/10.1080/01904167.2019.1567778
  • [32] Zandvakili, O. R., Barker, A. V., Hashemi, M., Etemadi, F., & Autio, W. R. (2019). Comparisons of commercial organic and chemical fertilizer solutions on growth and composition of lettuce. Journal of Plant Nutrition, 42(9), 990–1000. https://doi.org/10.1080/01904167.2019.1589505
Typ dokumentu
article
Bibliografia
Identyfikatory
Identyfikator YADDA
bwmeta1.element.psjd-e9cee75c-3d72-438a-aee1-b5523f5ac7e5
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