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Effect of Different Source and Rates of Biochar Application on Selected Physic-Chemical Properties of Acidic Soil in Western Ethiopia

Received: 29 October 2021    Accepted: 17 November 2021    Published: 24 November 2021
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Abstract

Soil acidity is the serious problem in the western Ethiopia. Therefore the aim of this experiment was to study the effect of different source and rates of biochar application on the selected physic chemical properties of acidic soil. The experiment involved factorial combinations of three sources biochar (maize, sesame and soybean) and five rates of biochar (0, 2, 4, 6, 8 and 10 t ha−1) laid out in randomized complete block design with three replications. Soil samples were collected at a depth of 0–15 cm and the selected physic chemical properties of acidic soil were analyzed by standard laboratory procedure. The result indicated that the maximum mean of soil moisture (4.3) was recorded at 8 t ha−1 of soybean biochar and all soil treated biochar were sandy clay textural class except at sesame source at 10 t ha-1 results sandy loam. They also maximum Electrical conductivity (0.087), soil pH (H2O) (6.81), organic carbon (2.96%), organic matter (5.10), total nitrogen (0.25%), Available K+ (23.17) Available P (13.96), calcium (8.19) and base saturation percentage (79.53) were recorded from sesame source with 10 tha-1 rates but the maximum cation exchange capacity (27.18) and potassium (2.38) where recorded at from maize source at 6 t ha-1rates of biochar while the maximum magnesium and sodium where recorded from the sesame source at 8t ha-1 rates. The result indicates that the sesame source of biochar application with the rates of 10 t ha-1 were significantly improved the physical and chemical properties of acidic soil but additional research work were needed regarding to integrated management of soil acidity is different location and different Agro-ecology.

Published in Modern Chemistry (Volume 9, Issue 4)
DOI 10.11648/j.mc.20210904.12
Page(s) 77-82
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This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited.

Copyright

Copyright © The Author(s), 2021. Published by Science Publishing Group

Keywords

Biochar, Different Feedstock, Physic-chemical and Acidic Soil

References
[1] Abdenna, Deressa, Negassa Chawaka and Tilahun, Geleto, 2007. Inventory of soil acidity status in crop lands of land use systems: sustainable and organic approaches to meet Human needs, Witzenhausen, rates and time on some chemical properties of an acid 9-11 October, 2007.
[2] Achalu Chimdi, Heluf Gebrekidan, Kibebew Kibret and Abi Tadesse 2012 Effects of Liming on Acidity-Related Chemical Properties of Soils of Different Land Use Systems in Western Oromia, Ethiopia. World J. of Agric. Sci., 8 (6): 560-567.
[3] Alleoni, L. R. F., Cambri, M. A., Caires, E. F. and Garbuio, F. J. (2010). Acidity and aluminum speciation as affected by surface liming in tropical no-till soils. Soil Science Society American Journal, 74: 1010-1017.
[4] Bhattarai, B., Neupane, J., Dhakal, S. P., Nepal, J., Gnyawali, B., Timalsina, R. and Poudel, A. (2015). Effect of Biochar from Different Origin on Physio-Chemical Properties of Soil and Yield of Garden Pea (Pisumsativum L.) at Paklihawa, Rupandehi, Nepal. World Journal Of Agriculture.
[5] Bouyoucos, G. H. 1951. "Reclamation of the hydrometer for making mechanical analysis of soil," J. Agron, vol. 43, pp. 434 – 438.
[6] Brady, N. C. and R. R. Well (2007). The nature and properties of soils. India, Pearson Education, Inc.
[7] Chan, K. Y.; Xu, Z. 2009 Biochar: Nutrient properties and their enhancement. In Biochar for Environmental Management: Science and Technology; Lehmann, J., Joseph, S., Eds.; Earthscan: London, UK, pp. 67–84.
[8] Clough, T. J.; Condron, L. M 2010. Biochar and the nitrogen cycle. J. Environ. Qual. 39, 1218–1223 gricultural Research., 3 (4): 1229- 138.
[9] IBI (International Biochar Initiative), Recent research on biochar’s potential in soils. International biochar initiative (IBI), 2012.
[10] Downie, A., Crosky, A., & Munroe, P. (2009). Physical properties of biochar. In Johannes Lehmann & S. Joseph (Eds.), Biochar for Environmental Management - Science and Technology (pp. 13-29).
[11] Gaskin, J. W., Steiner, C., Harris, K., Das, K. C., & Bibens, B. (2008). Effect of low-temperature pyrolysis conditions on biochar for agricultural use. Transactions of the ASABE, 51 (6), pp. 2061-2069.
[12] Glaser, B., Lehmann, J., Zech, W. (2002): Ameliorating physical and chemical properties of highly weathered soils in the tropics with charcoal -a review. Biology and Fertility of Soils, 35 (4): 219-230.
[13] Jackson M. L., 1958. Soil chemical analysis, 6th ed. Madison, Wis. 3706: Prentice Hall, Inc. 1970 by the Author. Department of Soil Science, University of Wisconsin.
[14] Jones, J. B., Jr. 2001. Laboratory guide for conducting soil tests and plant analysis. CRC Press, Boca Raton London New York, Washington, D.C.
[15] Khan M. A., Naveed K., Ali K., Ahmad B. and Jan S. 2012. Impact of mungbean-maize intercropping on growth and yield of mungbean. Weed science society of Pakistan department of weed science. J. Weed Sci. Res. 18 (2): 191-200.
[16] Lima, I. M. and Marshall, W. E. (2005). Granular activated carbons from broiler manure: physical, chemical and adsorptive properties. Bioresour. Technol., 96: 699-706.
[17] Niemeyer, T., M. Niemeyer, A. Mohamed, S. Fottner and W. Hardtle, 2005. Impact of prescribed burning on the nutrient balance of Heath Lands with particular reference to nitrogen and phosphorus. Appl. Veg. Sci., 8: 183-192.
[18] Nigussie A. Kissi E., Misganaw M., Ambaw G. 2012. Effect of biochor application on soil prop­erties and nutriend uptake of lettuces (lactuca sa­tiva) grown in chromium polluted soils. American- Eurasian Journal of Agricultural and Enviromental Sciences, 12 (3).
[19] Sohi, S., C. E. Loez, E. Krull and R. Bol, 2009. Biochar's roles in soil and climate change: A review of research needs. CSIRO Land and Water Science Report 05/09, pp: 64.
[20] Solomon, D., J. Lehmann, J. Thies, T. Schafer, B. Liang, J. Kinyangi, E. Neves, J. Petersen, F. Luizo and J. Skjemstad, 2007. Molecular signature and sources of biochemical recalcitrance of organic C in Amazonian dark earths. Geochimica et Cosmochimica Acta, 71: 2285-2298.
[21] Taye, Bekele. 2008. Estimation of Lime Requirement. Training Manual for Regional Soil Testing Laboratory Heads and Technicials. National soil Testing Center, Ministry of Agriculture and Rural Development.
[22] Walkley. A and I. A. Black, 1934."An examination of Degtjareff method for determination of soil organic and proposal modification of the chromic acid titration method," Soil Sci., vol. 37, pp. 29-38.
[23] Woolf, D., Lehmann, J. Modelling the long-term response to positive and negative priming of soil organic carbon by black carbon. Biogeochemistry 2012, 111, 83–95.
[24] Yuan, J. H., Xu, R. K. and Zhang, H. (2011). The forms of alkalis in the biochar produced from crop residues at different temperatures. Bioresour Technol., 102: 3488–349.
[25] Eyasu Elias, 2002. Farmers Perceptions of change and management of soil fertility. SOS Sahel-Sahel and Institute of development studies. Addis Ababa Ethiopia. 252pp.
[26] Menzies N. W., 2003. Toxic Elements in Acid Soils: Chemistry and Measurement. 267-296. In: Zdenko Rengel (ed.) Handbook of Soil Acidity. University of Western Australia, Perth, Western Australia, Australia.
[27] Marschner, P., 2012. Mineral Nutrition of Higher Plants (3rd eds.) Acadamic Press Elsevier Ltd., United States of America. 668p.
[28] Robarge W. P., 2008. Acidity. In: Encyclopedia of Soil Science, Encyclopedia of Earth Sciences Series (Ed.: Ward Chesworth). 860pp.
[29] Mesfin Abebe. 2007. Nature and Management of Acid Soil in Ethiopia. Haramaya University. Haramaya, Ethiopia. 99pp.
[30] Kochian L. V., M. A. Pineros, J. Liu and J. V. Magalhae, 2015. Plant Adaptation to Acid Soils: The Molecular Basis for Crop Aluminum Resistance. Annual Review of Plant Biology, 66: 571–598.
[31] Kochian L. V., O. A. Hoekenga and M. A. Pineros, 2004. How do crop plants tolerate acid soils mechanisms of aluminum tolerance and phosphorous efficiency? Annual Review of Plant Biology, 55: 459 - 493.
[32] Sumner, M. E. and A. D. Noble, 2003. Soil acidification: the world story. 1 - 28. In: Rengel, Z. (eds.), Hand book of soil acidity. University of Western Australia, Perth, Western Australia.
[33] Lehmann, J. & Joseph, S. (2009). Biochar for environmental management: an introduction. In: Lehmann J and Joseph S (eds.): Biochar for Environmental Management: Science and Technology. Earthscan, London, pp. 1-12.
[34] Wakene NC, Heluf G (2003) The impact of different land use systems on soil quality of Western Ethiopian Alfisols. Bako Agricultural Research Center, West Shoa, Ethiopia. Pp 2-6.
[35] Zhang, A., Cui, L.; Pan, G., Li, L., Hussain, Q., Zhang, X., Zheng, J., Crowley, D.(2010) Effect of biochar amendment on yield and methane and nitrous oxide emissions from a rice paddy.
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    Talila Garamu Urgessa. (2021). Effect of Different Source and Rates of Biochar Application on Selected Physic-Chemical Properties of Acidic Soil in Western Ethiopia. Modern Chemistry, 9(4), 77-82. https://doi.org/10.11648/j.mc.20210904.12

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    Talila Garamu Urgessa. Effect of Different Source and Rates of Biochar Application on Selected Physic-Chemical Properties of Acidic Soil in Western Ethiopia. Mod. Chem. 2021, 9(4), 77-82. doi: 10.11648/j.mc.20210904.12

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    AMA Style

    Talila Garamu Urgessa. Effect of Different Source and Rates of Biochar Application on Selected Physic-Chemical Properties of Acidic Soil in Western Ethiopia. Mod Chem. 2021;9(4):77-82. doi: 10.11648/j.mc.20210904.12

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  • @article{10.11648/j.mc.20210904.12,
      author = {Talila Garamu Urgessa},
      title = {Effect of Different Source and Rates of Biochar Application on Selected Physic-Chemical Properties of Acidic Soil in Western Ethiopia},
      journal = {Modern Chemistry},
      volume = {9},
      number = {4},
      pages = {77-82},
      doi = {10.11648/j.mc.20210904.12},
      url = {https://doi.org/10.11648/j.mc.20210904.12},
      eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.mc.20210904.12},
      abstract = {Soil acidity is the serious problem in the western Ethiopia. Therefore the aim of this experiment was to study the effect of different source and rates of biochar application on the selected physic chemical properties of acidic soil. The experiment involved factorial combinations of three sources biochar (maize, sesame and soybean) and five rates of biochar (0, 2, 4, 6, 8 and 10 t ha−1) laid out in randomized complete block design with three replications. Soil samples were collected at a depth of 0–15 cm and the selected physic chemical properties of acidic soil were analyzed by standard laboratory procedure. The result indicated that the maximum mean of soil moisture (4.3) was recorded at 8 t ha−1 of soybean biochar and all soil treated biochar were sandy clay textural class except at sesame source at 10 t ha-1 results sandy loam. They also maximum Electrical conductivity (0.087), soil pH (H2O) (6.81), organic carbon (2.96%), organic matter (5.10), total nitrogen (0.25%), Available K+ (23.17) Available P (13.96), calcium (8.19) and base saturation percentage (79.53) were recorded from sesame source with 10 tha-1 rates but the maximum cation exchange capacity (27.18) and potassium (2.38) where recorded at from maize source at 6 t ha-1rates of biochar while the maximum magnesium and sodium where recorded from the sesame source at 8t ha-1 rates. The result indicates that the sesame source of biochar application with the rates of 10 t ha-1 were significantly improved the physical and chemical properties of acidic soil but additional research work were needed regarding to integrated management of soil acidity is different location and different Agro-ecology.},
     year = {2021}
    }
    

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  • TY  - JOUR
    T1  - Effect of Different Source and Rates of Biochar Application on Selected Physic-Chemical Properties of Acidic Soil in Western Ethiopia
    AU  - Talila Garamu Urgessa
    Y1  - 2021/11/24
    PY  - 2021
    N1  - https://doi.org/10.11648/j.mc.20210904.12
    DO  - 10.11648/j.mc.20210904.12
    T2  - Modern Chemistry
    JF  - Modern Chemistry
    JO  - Modern Chemistry
    SP  - 77
    EP  - 82
    PB  - Science Publishing Group
    SN  - 2329-180X
    UR  - https://doi.org/10.11648/j.mc.20210904.12
    AB  - Soil acidity is the serious problem in the western Ethiopia. Therefore the aim of this experiment was to study the effect of different source and rates of biochar application on the selected physic chemical properties of acidic soil. The experiment involved factorial combinations of three sources biochar (maize, sesame and soybean) and five rates of biochar (0, 2, 4, 6, 8 and 10 t ha−1) laid out in randomized complete block design with three replications. Soil samples were collected at a depth of 0–15 cm and the selected physic chemical properties of acidic soil were analyzed by standard laboratory procedure. The result indicated that the maximum mean of soil moisture (4.3) was recorded at 8 t ha−1 of soybean biochar and all soil treated biochar were sandy clay textural class except at sesame source at 10 t ha-1 results sandy loam. They also maximum Electrical conductivity (0.087), soil pH (H2O) (6.81), organic carbon (2.96%), organic matter (5.10), total nitrogen (0.25%), Available K+ (23.17) Available P (13.96), calcium (8.19) and base saturation percentage (79.53) were recorded from sesame source with 10 tha-1 rates but the maximum cation exchange capacity (27.18) and potassium (2.38) where recorded at from maize source at 6 t ha-1rates of biochar while the maximum magnesium and sodium where recorded from the sesame source at 8t ha-1 rates. The result indicates that the sesame source of biochar application with the rates of 10 t ha-1 were significantly improved the physical and chemical properties of acidic soil but additional research work were needed regarding to integrated management of soil acidity is different location and different Agro-ecology.
    VL  - 9
    IS  - 4
    ER  - 

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Author Information
  • Oromia Agriculture Research Institute (OARI), Sinana Agriculture Research Center, Bale Robe, Ethiopia

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