Have a personal or library account? Click to login
Relationships between soil organic matter and crop yield after biochar substrates application and their combination with mineral fertilizers on sandy soil Cover

Relationships between soil organic matter and crop yield after biochar substrates application and their combination with mineral fertilizers on sandy soil

Open Access
|May 2021

References

  1. Agegnehu, G., Bass, A. M., Nelson, P. N., & Bird, M. I. (2016). Benefits of biochar, compost and biochar-compost for soil quality, maize yield and greenhouse gas emissions in a tropical agricultural soil. Science of The Total Environment, 543, 295–306. https://doi.org/10.1016/j.scitotenv.2015.11.054
  2. Aydin, E., Šimanský, V. Horák, J., & Igaz, D. (2020). Potential of biochar to alternate soil properties and crop yields 3 and 4 years after the application. Agronomy, 10, 889. https://doi.org/10.3390/agronomy10060889
  3. Behera, S. K., & Shukla, A. K. (2015). Spatial distribution of surface soil acidity, electrical conductivity, soil organic carbon content and exchangeable potassium calcium and magnesium in some cropped acid soils of India. Land Degradation and Development, 26, 71–79.
  4. Cornelissen, G., Jubaedah, Nurida, N. L., Hale, S. E., Martinsen, V., Silvani, L., & Mulder, J. (2018). Fading positive effect of biochar on crop yield and soil acidity during five growth seasons in an Indonesian Ultisol. Science of the Total Environment, 634, 561–568. https://doi.org/j.scietotenv.2018.03.380
  5. El-Naggar, A., Lee, S., Rinklebe, J., Farooq, M., Song, H., Sarmah, A. K., Zimmerman, A. R., Ahmad, M., Shaheen, S. M., & Ok, S. Y. (2019). Biochar application to low fertility soils: A review of current status, and future prospects. Geoderma, 337, 536–554. https://doi.org/10.1016/j.geoderma.2018.09.034
  6. Gantner, R., Stjepanivić, M., & Gantner, V. (2008). Precipitation and temperature effects upon grain yield of field pea. Cereal Research Communication, 36, 1503–1506.
  7. Gondek, K., Mierzwa-Hersztek, M., Kopeć, M., Lošák, T., von Bennewitz, E., Spandel, A., & Kuc, K. (2020). The effectiveness of biochar in mitigating changes in the chemical properties of sandy soil treated with various chemicals. Journal of Elementology, 25(3), 1045–1058. https://doi.org/10.5601/jelem.2019.24.4.1941
  8. Horák, J. (2015). Testing biochar as a possible way to ameliorate slightly acidic soil at the research field located in the Danubian Lowland. Acta Horticulturae et Regiotecturae, 1, 20–24. https://doi.org/10.1515/ahr-2015.0005
  9. Horák, J., Aydin, E., Igaz, D., Šimanský, V., Felber, R., Lukac, M., Balashov, E. Buchkina, N., Rizhiya, E., & Jankowski, M. (2017). Biochar and biochar with N-fertilizer affect soil N2O emission in Haplic Luvisol. Biologia, 72(9), 995–1001. https://doi.org/10.1515/biolog-2017-0109
  10. Horák, J., Šimanský, V., & Aydin, E. (2020). Benefits of biochar and its combination with nitrogen fertilization for soil quality and grain yields of barley, wheat and corn. Journal of Elementology, 25, 443-458. https://doi.org/10.5601/jelem.2019.24.3.1887
  11. Hrivňáková, K., Makovníková, J., Barančíková, G., Bezák, P., Bezáková, Z., Dodok, R., Grečo, V., Chlpík, J., Kobza, J., Lištjak, J., Mališ, J., Píš, V., Schlosserová, J., Slávik, O., Styk, J., & Širáň, M. (2011). Uniform working procedures of soil analysis. VÚPOP.
  12. Cheng, H., Hill, P. W., Bastami, M., S., & Jones, D. L. (2016). Biochar stimulates the decomposition of simple organic matter and suppresses the decomposition of complex organic matter in a sandy loam soil. GCB Bioenergy, 9(6), 1110–1121. https://doi.org/10.1111/gcbb.12402
  13. Igaz, D., Šimanský, V., Horák, J., Aydin, E., Domanová, J., Rodný, M., & Buchkina, N. (2018). Can a single dose of biochar affected soil physical and chemical characteristics? Journal of Hydrology and Hydromechanics, 66(2), 421–428. https://doi.org/10.2478/john-2018-0034
  14. IUSS Working Group (WRB). (2015). World Reference Base for Soil Resources 2014, update 2015. International soil classification system for naming soils and creating legends for soil maps (World Soil Resources Reports No. 106). FAO.
  15. Jones, D. L., Rousk, J., Edwards-Jones, G., DeLuca, T. H., & Murphy, D. V. (2012). Biocharmediated changes in soil quality and plant growth in a three year field trial. Soil Biololgy and Biochemistry, 45, 113–124. https://doi.org/10.1016/j.soilbio.2011.10.012
  16. Juriga, M., & Šimanský, V. (2019). Effect of biochar and its reapplication on soil pH and sorption properties of silt loam Haplic Luvisol. Acta Horticulturae et Regiotecturae, 22(2), 65–70. https://doi.org/10.2478/ahr-2019-0012
  17. Kováčik, P., & Ryant, P. (2019). Agrochemistry (principles and practice). SUA.
  18. Mierzwa-Hersztek, M., Gondek, K., Klimkowicz-Pawlas, A., Kopeć, M., & Lošák, T. (2018). Effect of coapplication of poultry litter biochar and mineral fertilisers on soil quality and crop yield. Zemdirbyste-Agriculture, 105(3), 203–210. https://doi.org/10.13080/z-a.2018.105.026
  19. Obia, A., Mulder, J., Martinsen, V., & Cornelissen, G. (2016). In situ if bichar on aggregation, water retention and porosity in light-textured tropical soil. Soil & Tillage Research, 155, 35–44. https://doi.org/10.1016/j.still.2015.08.002
  20. Osman, K. T. (2018). Management of soil problems. Routledge.
  21. Rawat, J., Saxena, J., & Sanwal, P. (2019). Biochar: a sustainable approach for improving plant growth and soil properties. In Abrol, V., & Sharma, P. (Eds.) Biochar, an imperative amendment for soil and the environment (pp. 3–19). IntechOpen.
  22. Shackley, S., Ruysschaert, G., Zwart, K., & Glaser, B. (2016). Biochar in European soils and agriculture. Routledge.
  23. Singh, B. P., & Cowie, A. L. (2014). Long-term influence of biochar on native organic carbon mineralisation in a low-carbon clayey soil. Science Reports, 4, 1–9. https://doi.org/10.1038/srep03687
  24. Singh, B., & Cowie, A. L. (2010). Characterisation and evaluation of biochars for their application as a soil amendment. Australian Journal of Soil Research, 48, 516–525.
  25. STATdat (2020). Branch Statistics > Agriculture, Forestry, Fisheries > Yields of Selected Agricultural Crops > Select Data > Hectare Yields (Tons). http://statdat.statistics.sk
  26. Thalmann, M., & Santelia, D. (2017). Strach as a determinant of plant fitness under abiotic stress. The New Phytologist, 214(3), 943–951.
DOI: https://doi.org/10.2478/ahr-2021-0020 | Journal eISSN: 1338-5259 | Journal ISSN: 1335-2563
Language: English
Page range: 14 - 20
Submitted on: Oct 27, 2020
|
Accepted on: Feb 21, 2021
|
Published on: May 21, 2021
In partnership with: Paradigm Publishing Services
Publication frequency: 2 issues per year

© 2021 Vladimír Šimanský, Dušan Šrank, published by Slovak University of Agriculture in Nitra
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.