The effects of biochar and chicken manure on the growth and yield of pea in sandy soil
DOI:
https://doi.org/10.58916/jhas.v9i5.566الكلمات المفتاحية:
العربيةالملخص
Pea (Pisum sativum L.) is an herbaceous annual plant in the Fabaceae family, known for its cultivation over millennia as a vital food crop worldwide. However, the influence of biochar on its production under organic farming conditions remains inadequately explored. This study investigates the synergistic effects of biochar and chicken manure on the growth and yield of pea plants. The experiment employed a completely randomized block design (CRBD) with three replicates, encompassing four treatments: a control, 10 t/ha chicken manure, 2 % biochar combined with 10 t/ha chicken manure, and 5 % biochar combined with 10 t/ha chicken manure. The experiment was conducted in the winter of 2023. The results revealed that the biochar-chicken manure combination significantly enhanced pea growth and yield. Notably, the 5 % biochar plus 10 t/ha chicken manure treatment achieved the highest increase, boosting yield by 70 % compared to the control. These findings highlight the potential of biochar as a potent amendment in organic farming, especially in challenging soil conditions like sandy soils. Future research should delve deeper into the long-term impacts of biochar on soil health and pea productivity to refine sustainable agricultural practices.
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Adekiya, A. O., Agbede, T. M., Ejue, W. S., Aboyeji, C. M., Dunsin, O., Aremu, C. O., and Adesola, O. O. (2020). Biochar, poultry manure and NPK fertilizer: sole and combine application effects on soil properties and ginger (Zingiber officinale Roscoe) performance in a tropical Alfisol. Open Agriculture, 5(1), 30-39.
Agbede, T. M., Odoja, A. S., Bayode, L. N., Omotehinse, P. O., and Adepehin, I. (2020). Effects of biochar and poultry manure on soil properties, growth, yield and quality of cocoyam (Xanthosoma sagittifolium Schott) grown in sandy soil. Communications in Soil Science and Plant Analysis, 51(7), 932-947.
Ali, L., Xiukang, W., Naveed, M., Ashraf, S., Nadeem, S. M., Haider, F. U., and Mustafa, A. (2021). Impact of biochar application on germination behavior and early growth of maize seedlings: insights from a growth room experiment. Applied Sciences, 11(24), 11666.
Al-Madani, Fathallah Muhammad, and Daryak., Jamal Saeed (2023). Using biochar to improve some properties of sandy soil planted with wheat. (Triticum durum L). Bani Waleed University Journal of Humanities and Applied Sciences, 8(2), 436-452.
Bhattacharyya, P. N., Sandilya, S. P., Sarma, B., Pandey, A. K., Dutta, J., Mahanta, K., and Borgohain, D. J. (2024). Biochar as Soil Amendment in Climate-Smart Agriculture: opportunities, future prospects, and challenges. Journal of Soil Science and Plant Nutrition, 24(1), 135-158.
Bo, X., Zhang, Z., Wang, J., Guo, S., Li, Z., Lin, H., and Zou, J. (2023). Benefits and limitations of biochar for climate-smart agriculture: a review and case study from China. Biochar, 5(1), 77.1 -24.
Cai, T., Wang, Z., Guo, C., Huang, H., Chai, H., and Zhang, C. (2022). Effects of Biochar and Manure Co-Application on Aggregate Stability and Pore Size Distribution of Vertisols. International Journal of Environmental Research and Public Health, 19(18), 11335.
Carril, P., Ghorbani, M., Loppi, S., and Celletti, S. (2023). Effect of Biochar Type, Concentration and Washing Conditions on the Germination Parameters of Three Model Crops. Plants, 12(12), 2235.
Elzobair, A., and Rassem, M. (2023). Observations on bacterial population dynamics with biochar applications. Unpublished data. Sebha University, Libya.
Fadl, Maryam Ibrahim Muhammad, and alkut, Entesar milad., (2023) Evaluating the effect of treatment with organic fertilizer on some properties of sandy soil, Bani Waleed University Journal of Humanities and Applied Sciences, 8 (5):511-519.
Fareed, S., Haider, A., Ramzan, T., Ahmad, M., Younis, A., Zulfiqar, U., and Soufan, W. (2024). Investigating the growth promotion potential of biochar on pea (Pisum sativum) plants under saline conditions. Scientific Reports, 14(1), 10870.
Gollner, G., Starz, W., and Friedel, J. K. (2019). Crop performance, biological N fixation and pre-crop effect of pea ideotypes in an organic farming system. Nutrient Cycling in Agroecosystems, 115(3), 391-405.
Kalu, S., Kulmala, L., Zrim, J., Peltokangas, K., Tammeorg, P., Rasa, K., and Karhu, K. (2022). Potential of biochar to reduce greenhouse gas emissions and increase nitrogen use efficiency in boreal arable soils in the long-term. Frontiers in Environmental Science, 10, 914766.
Lehmann, J., Rillig, M. C., Thies, J., Masiello, C. A., Hockaday, W. C., and Crowley, D. (2011). Biochar effects on soil biota–a review. Soil biology and biochemistry, 43(9), 1812-1836.
Mardiansyah, K., Usup, A., and Asie, E. R. (2020). The effects of biochar and chicken manure application on red ginger (Zingiber officinale Rosc.) growth and yield of semi paludiculture in tropical peatlands. Journal of Tropical Peatlands, 10(2), 9-16.
Mikajlo, I., Lerch, T. Z., Louvel, B., Hynšt, J., Záhora, J., and Pourrut, B. (2024). Composted biochar versus compost with biochar: effects on soil properties and plant growth. Biochar, 6(1), 85.1-17.
Nguyen, B. T., Nguyen, V. N., Nguyen, T. X., Nguyen, M. H., Dong, H. P., Dinh, G. D., and Tran, H. T. T. (2022). Biochar enhanced rice (Oryza sativa L.) growth by balancing crop growth-related characteristics of two paddy soils of contrasting textures. Journal of Soil Science and Plant Nutrition, 22(2), 2013-2025.
Palansooriya, K. N., Wong, J. T. F., Hashimoto, Y., Huang, L., Rinklebe, J., Chang, S. X., and Ok, Y. S. (2019). Response of microbial communities to biochar-amended soils: a critical review. Biochar, 1, 3-22.
Park, J. H., Yun, J. J., Kim, S. H., Park, J. H., Acharya, B. S., Cho, J. S., and Kang, S. W. (2023). Biochar improves soil properties and corn productivity under drought conditions in South Korea. Biochar, 5(1), 66.1-11.
Rassem, A., and Elzobair, K. (2023). The combined effect of biochar and organic fertilizer (goat manure) on the growth and yield of peanut crop (Arachis hypogaea L.). Journal of Pure and Applied Sciences, 22(3), 172-176.
Ren, H., Huang, B., Fernández-García, V., Miesel, J., Yan, L., and Lv, C. (2020). Biochar and rhizobacteria amendments improve several soil properties and bacterial diversity. Microorganisms, 8(4), 502.1 -17.
Sakhiya, A. K., Anand, A., and Kaushal, P. (2020). Production, activation, and applications of biochar in recent times. Biochar 2: 253–285.
Sayed, Y. A., Ali, A. M., Ibrahim, M. F., Fadl, M. E., Casucci, C., Drosos, M., and Al-Sayed, H. M. (2024). Impact of Poultry Manure-Derived Biochar and Bio-Fertilizer Application to Boost Production of Black Cumin Plants (Nigella sativa L.) Grown on Sandy Loam Soil. Agriculture, 14(10), 1801.
Tawfik, A., Eraky, M., Osman, A. I., Ai, P., Zhou, Z., Meng, F., and Rooney, D. W. (2023). Bioenergy production from chicken manure: A review. Environmental Chemistry Letters, 21(5), 2707-2727.
Tusar, H. M., Uddin, M. K., Mia, S., Suhi, A. A., Wahid, S. B. A., Kasim, S., and Anwar, F. (2023). Biochar-acid soil interactions—a review. Sustainability, 15(18), 13366.
Warnock, D. D., Lehmann, J., Kuyper, T. W., and Rillig, M. C. (2007). Mycorrhizal responses to biochar in soil–concepts and mechanisms. Plant and soil, 300, 9-20.
Xiang, Y., Liu, Y., Niazi, N. K., Bolan, N., Zhao, L., Zhang, S., and Li, Y. (2023). Biochar addition increased soil bacterial diversity and richness: Large-scale evidence of field experiments. Science of the Total Environment, 893, 164961.
Yuan, J. H., Xu, R. K., and Zhang, H. (2011). The forms of alkalis in the biochar produced from crop residues at different temperatures. Bioresource technology, 102(3), 3488-3497.
Zhao, Y., Li, X., Li, Y., Bao, H., Xing, J., Zhu, Y., and Xu, G. (2022). Biochar acts as an emerging soil amendment and its potential ecological risks: a review. Energies, 16(1), 410. 1-32.