Effect of micronutrients on the growth and yield parameter of spring maize in Gauradaha, Nepal
Abstract
Micronutrients, required in trace amounts, are crucial for crop growth and metabolic activities. Maize is susceptible to micronutrient deficiencies and exhibits hidden hunger symptoms when lacking essential nutrients. This study, conducted at Gauradaha Agriculture Campus, Jhapa, from January to June 2023, aimed to assess the impact of zinc (Zn), boron (B), and sulfur (S) on maize growth and yield. A single-factorial randomized complete block design (RCBD) was used with seven treatments and three replications. Results revealed that the combined application of micronutrients with the recommended dose of NPK significantly enhanced maize growth and yield parameters. The T6 treatment (Zn 10 kg/ha + B 6 kg/ha + S 7 kg/ha with recommended NPK) produced the highest values for key growth indicators: leaf area, ear length (19.56 cm), ear diameter (6.24 cm), kernel rows per ear (15.72), grains per row (44.25), ear weight (17.65 tons/ha), biological yield (34.80 tons/ha), grain yield (12.68 tons/ha), and stover yield (3.39 tons/ha). Additionally, T4 (S 40 kg/ha with NPK) resulted in the highest test weight (438.33 g). Micronutrient application did not significantly affect plant height or the number of leaves. The study concludes that applying 10 kg/ha of Zn, 6 kg/ha of B, and 7 kg/ha of S with NPK significantly improves maize yield, demonstrating suitability for the local soil conditions and offering a practical approach to mitigate hidden hunger in maize.
Keywords:
Growth, Micronutrients, TX-369, Yield, Zea maysDownloads
References
Abednego, B., Bationo, A., & Ahenkan, P. (2023). Effect of Primary, Secondary and Micro Nutrients on Maize Yield in the Wenchi Municipality, Ghana. Annual Research & Review in Biology, 38(8), 21-32.
Adarsha, G. S., Veeresh, H., Narayanarao, K., Gaddi, A. K., & Basavanneppa, M. A. (2019). Effect of foliar application of micronutrient mixture on growth and yield of maize (Zea mays L.). Journal of Farm Sciences, 32(2), 162.
Albayaty, N., & Jumaa, S. H. (2024, July). Effect of Boron Concentration on Growth and Grain Quality of Maize (Zea mays L.). In IOP Conference Series: Earth and Environmental Science (Vol. 1371, No. 5, p. 052083). IOP Publishing.
Alloway, B. J. (2013). Heavy metals and metalloids as micronutrients for plants and animals. Heavy metals in soils: trace metals and metalloids in soils and their bioavailability, 195-209. https://doi.org/10.1007/978-94-007-4470-7
Ariraman, R., Kumar, A. P., Selvakumar, S., Sowmya, S., & Mansingh, M. D. I. (2020). Effect of sulphur nutrition on growth parameters, yield parameters, yield, nutrient uptake, quality and economics of maize: A review. Journal of Pharmacognosy and Phytochemistry, 9(6), 1632-1636.
Aryal, D., Tamang, A., & Magar, R. G. (2024). Evaluation of different organic and inorganic fertilizer combinations on the growth and yield of cabbage. Journal of Agriculture and Applied Biology, 5(1), 63-74.
Banerjee, P., Venugopalan, V. K., Nath, R., Althobaiti, Y. S., Gaber, A., Al-Yasi, H., & Hossain, A. (2021). Physiology, growth, and productivity of spring–summer black gram (Vigna mungo L. Hepper) as influenced by heat and moisture stresses in different dates of sowing and nutrient management conditions. Agronomy, 11(11), 2329. https://doi.org/10.3390/agronomy11112329
Bashir, K., Rasheed, S., Kobayashi, T., Seki, M., & Nishizawa, N. K. (2016). Regulating subcellular metal homeostasis: the key to crop improvement. Frontiers in Plant Science, 7, 1192. https://doi.org/10.3389/fpls.2016.01192
Behera, H. S., & Kumar, R. Evaluation of Timing of Nitrogen Application in Maize (Zea mays L.) Grown on Coarse Loamy Typic Haplustepts Soil of Punjab: A Review. International Journal of Plant & Soil Science,34(21), 39-47.
Berhe, H. M., & Marie, F. B. (2020). Evaluation of blended fertilizer (NPSZnB) rates on grain yield, nutrient uptake, and economic feasibility of maize (Zea mays L.) in Kolla-Temben, Central zone of Tigrai, Ethiopia. Research Square. https://doi.org/10.21203/rs.3.rs-24987/v1
Bhaumik, S., Kumar, S., and Fayaz, S. 2023. Impact of Nutrients on the Development and Yield of Fodder Maize Impact of Nutrients on the Development and Yield of Fodder Maize (Zea mays L.). A Review. Agricultural Reviews. https://doi.org/10.18805/ag.R-2631
Borase, C. L., Lomte, D. M., Thorat, S. D., & Dhonde, A. S. (2018). Response of Kharif maize (Zea mays L.) to micronutrients. Journal of Pharmacognosy and Phytochemistry, 7(3), 482-484.
Chopde, N., Nehare, N., Maske, S. R., Lokhande, S., and Bhute, P. N. (2015). Effect of Foliar Application of Zinc and Iron on Growth, Yield, and Quality of Gladiolus. Plant Archives, 15(1), 417–419.
El-Azeiz, A., & Hamdy, E. (2023). Effect of Sulfur, Boron, Zinc and Iron on Canola under Salt Affected Soils. Egyptian Journal of Soil Science, 63(4), 475-487.
Hisham, A. A., Ch’Ng, H. Y., Rahman, M. M., Mat, K., & Zulhisyam, A. K. (2021, May). Effects of zinc on the growth and yield of maize (Zea mays L.) cultivated in a tropical acid soil using different application techniques. In IOP Conference Series: Earth and Environmental Science (Vol. 756, No. 1, p. 012056). IOP
Publishing. https://doi.org/10.1088/1755-1315/756/1/012056
Huthily, K. H., Al-Dogagy, K. A., & Kalaf, M. A. (2020). Effect of Nitrogen Fertilization and Foliar Application of Zinc in Growth and Yield of Maize (Zea mays L.). International Journal of Agricultural Statistical Science, 16, 1375-1380.
Jagasia, P. V., Magodia, H. A., & Kale, A. P. (2024). Effect of Sulphur and Foliar Application of Micronutrients on Yield and Nutrient Uptake of Groundnut (Arachis hypogaea L). International Research Journal on Advanced Engineering and Management (IRJAEM), 2(03), 468-478. https://doi.org/10.47392/IRJAEM.2024.0066
Jiang, C., Liang, Y., Wang, Y., You, G., Guo, J., Lu, D., & Li, G. (2024). Effects of Sulfur Application on the Quality of Fresh Waxy Maize. Plants, 13(19), 2677.
Joshia, A., Rauta, S. K., Maharaa, B., Dahala, A., & Upadhyayab, K. R. Effect of boron and zinc on yield and yield attributing traits of spring mung bean (Vigna radiata l.) in Kailali condition. Sustainability in Food and Agriculture, 5(2), 70-77. http://doi.org/10.26480/sfna.02.2024.70.77
Kandel, B. P. (2021). Status, prospect and problems of hybrid maize (Zea mays L.) in Nepal: a brief review. Genetic Resources and Crop Evolution, 68, 1-10.
Kang, E., Li, Y., Zhang, X., Yan, Z., Wu, H., Li, M., & Kang, X. (2021). Soil pH and nutrients shape the vertical distribution of microbial communities in an alpine wetland. Science of the Total Environment, 774, 145780.
Khan, N. A., Khan, M. I. R., Asgher, M., Fatma, M., Masood, A., & Syeed, S. (2014). Salinity tolerance in plants: revisiting the role of sulfur metabolites. Journal of Plant Biochemistry & Physiology, 2(2), 10-4172.
Kumar, V. (2014). Sugar mill effluent utilization in the cultivation of maize (Zea mays L.) in two seasons. Journal of Waste Management, 08509, 1-12, https://doi.org/10.1155/2014/408509
Kumari, V. V., Banerjee, P., Verma, V. C., Sukumaran, S., Chandran, M. A. S., Gopinath, K. A., & Awasthi, N. K. (2022). Plant nutrition: An effective way to alleviate abiotic stress in agricultural crops. International Journal of Molecular Sciences, 23(15), 8519. https://doi.org/10.3390/ijms23158519
Lamlom, S. F., Abdelghany, A. M., Ren, H., Ali, H. M., Usman, M., Shaghaleh, H., & El-Sorady, G. A. (2024). Revitalizing maize growth and yield in water-limited environments through silicon and zinc foliar applications. Heliyon, 10(15).
Maseeh, Y., & Dawson, J. (2021). Effect of nitrogen and sulphur levels on growth and yield of maize (Zea mays L.). The Pharma Innovation Journal,10(8), 241-245.
Mian, I., Anwar, Y., Khan, S., Muhammad, M. W., Mussarat, M., Tariq, M., & Ali, J. (2021). Integrated influence of phosphorus and zinc along with farm yard manure on the yield and nutrients uptake in spring maize. Egyptian Journal of Soil Science, 61(2), 241-258.
Michael, P. I., and Krishnaswamy, M. 2012. Oxidative Stress and Antioxidants in Cowpea Plants Subjected To Boron and High Irradiance Stresses. Journal of Plant Nutrition, 35(14), 2180–2197. https://doi.org/10.1080/01904167.2012.724498
Ministry of Agriculture and Livestock Development (MOALD). (2022). Statistical Information on Nepalese Agriculture (2078/79).
Nadeem, F., & Farooq, M. (2019). Application of micronutrients in rice-wheat cropping system of South Asia. Rice Science, 26(6), 356-371. https://doi.org/10.1016/j.rsci.2019.02.002
Praveena, G., and Singh, S. 2020. Effect of Nitrogen and Sulphur Levels on Growth and Yield of Quality Protein Maize (Zea mays.L). International Journal of Current Microbiology and Applied Sciences, 9(7), 380–383. https://doi.org/10.20546/ijcmas.2020.907.041
Rawat, C. L., Dimree, S., Pathak, R. K., Tiwari, U. S., & Kumar, R. 2021. To study the effect of sulfur and zinc on the yield of maize crops under a maize-wheat cropping system. Journal of Pharmacognosy and Phytochemistry, 10(2), 819–823.
Riwad, M. T., & Alag, M. K. (2023). Role of nano and metallic boron foliar nutrition on water stress reducing in sweet corn yield and its components. Iraqi Journal of Agricultural Sciences, 54(5), 1421-1432.
Saboor, A., Ali, M. A., Ahmed, N., Skalicky, M., Danish, S., Fahad, S., & Datta, R. (2021). Biofertilizer-based zinc application enhances maize growth, gas exchange attributes, and yield in zinc-deficient soil. Agriculture, 11(4), 310. https://doi.org/10.3390/agriculture11040310
Shaaban, A., El-Mageed, T. A. A., El-Momen, W. R. A., Saudy, H. S., & Al-Elwany, O. A. (2023). The integrated application of phosphorous and zinc affects the physiological status, yield and quality of canola grown in phosphorus-suffered deficiency saline soil. Gesunde Pflanzen, 75(5), 1813-1821.
Shemi, R., Wang, R., Gheith, E. S. M., Hussain, H. A., Hussain, S., Irfan, M., & Wang, L. (2021). Effects of salicylic acid, zinc and glycine betaine on morpho-physiological growth and yield of maize under drought stress. Scientific Reports, 11(1), 3195.
Shrestha, S., Becker, M., Lamers, J. P., & Wimmer, M. A. (2021). Residual effects of B and Zn fertilizers applied to dry season crops on the performance of the follow-up crop of maize in Nepal. Journal of Plant Nutrition and Soil Science, 184(2), 238-245. https://doi.org/10.1002/jpln.202000289
Thapa, R. (2021). A detail eview on status and prospect of maize production in Nepal. Food and Agri Economics Review, 1(1), 52-56.
Tripathi, D. K., Singh, S., Singh, S., Mishra, S., Chauhan, D. K., & Dubey, N. K. (2015). Micronutrients and their diverse role in agricultural crops: advances and future prospective. Acta Physiologiae Plantarum, 37, 1-14.
Tunebo, A., Hegeno, A., Tesema, G., & Tesema, S. (2021). Determination of Rates of NPSB Blended Fertilizer for Better Production of Maize in Debub Ari District, Southern Ethiopia. Journal of Innovative Agriculture, 8(4), 14-19. https://doi.org/10.37446/jinagri/rsa/8.4.2021.14-19
Venkatesh, C. (2023). Effect of Poultry Manure, Vermicompost, and Boron on Growth and Yield of Maize. International Journal of Environment and Climate Change, 13(10), 1427-1433.
Venkateswarlu, B., Shanker, A. K., Shanker, C., & Maheswari, M. (Eds.). (2012). Crop stress and its management: perspectives and strategies. Springer Science & Business Media.
Xie, Y., Chen, P., Yan, Y., Bao, C., Li, X., Wang, L., & Guan, Q. (2018). An atypical R2R3 MYB transcription factor increases cold hardiness by CBF‐dependent and CBF‐independent pathways in apple. New Phytologist, 218(1), 201-218. https://doi.org/10.1111/nph.14952
Younis, M., Muhammad, A., Alam, S. & Jalal, A. (2020). Sulphur doses and application times on yield and oil quality of canola grown in calcareous soil. Grasa Aceites, 71(1). https://doi.org/10.3989/gya.1176 182
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