Open Access

The Use of Products from Leonardite to Improve Soil Quality in Condition of Climate Change

   | Apr 23, 2024

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Akinremi, O. O., Janzen, H. H., Lemke, R. L., & Larney, F. J. (2000). Response of canola, wheat and green beans to leonardite additions. Canadian Journal of Soil Science, 80, 437–443. https://doi.org/10.4141/S99-058 Search in Google Scholar

Akimbekov, N., Qiao, X., Digel, I., Abdieva, G., Ualieva, P., & Zhubanova, A. (2020). The Effect of leonardite-derived amendments on soil microbiome structure and potato yield. Agriculture, 10(5),147. https://doi.org/10.3390/agriculture10050147 Search in Google Scholar

Climate change threatens EU agriculture. (2019). https://www.pb.pl/zmiany-klimatu-zagrazaja-rolnictwu-w-ue-969440 (date of access: 4.09.2019). Search in Google Scholar

Dong, L., Córdova-Kreylos, A. L., Yang, J., Yuan, H., & Scow, K. M. (2009). Humic acids buffer the effects of urea on soil ammonia oxidizers and potential nitrification. Soil Biology and Biochemistry, 41, 1612–1621. https://doi.org/10.1016/j.soilbio.2009.04.023 Search in Google Scholar

Klimada. (2019). Consequences of climate change. Agricultures climate change adaptation policy to 2070. retrieved from: http://klimada.mos.gov.pl/zmiany-klimatu-w-polsce/konsekwencje-zmian-klimatu/ and: http://klimada.mos.gov.pl/blog/2013/04/15/rolnictwo/ (accessed 5.02.2020) Search in Google Scholar

Kocoń, A. (2013). Crop aids, soil conditioners – microbial preparations. Training Materials Postgraduate Studies. Integrated Crop Production, Pulawy, VIII (pp, 95–99). Search in Google Scholar

Kocoń, A., & Jadczyszyn, T. (2015). Influence of microbial preparations, methods of their application and nitrogen fertilisation doses on the content of assimilable phosphorus in soil and other selected chemical indices of soil fertility. Polish Journal of Agronomy, 21, 11–18. https://doi.org/10.26114/pja.iung.236.2015.21.02 Search in Google Scholar

Łabędzki, J. (2009). Projected climate change and irrigation development in Poland. Polish Academy of Science. Search in Google Scholar

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. Search in Google Scholar

Qian, S., Ding, W., Li, Y., Liu, G., Sun, J., & Ding, Q. (2015). Characterization of humic acids derived from leonardite using a solid-state NMR spectroscopy and effects of humic acids on growth and nutrient uptake of snap bean. Chemical Speciation and Bioavailability, 27, 156–161. https://doi.org/10.1080/09542299.2015.1118361 Search in Google Scholar

Pikuła, D. (2016). The role of humic substances and innovative products to increase their content in soil. Studies & Reports of IUNG-PIB, 48(2), 81–93. https://doi.org/10.26114/sir.iung.2016.48.06 Search in Google Scholar

Pikuła, D. (2022). Humic substances for the benefit of man and the environment. In 6th National Scientific Conference. Life sciences for man and the environment, 2022. Interdisciplinarity as a key to development (pp.12–13). Institute of Soil Science and Plant Cultivation, Puławy. Search in Google Scholar

Pikuła, D., & Ciotucha, O. (2022). The composition of the organic matter fractions of loamy sand after long-term FYM application without liming. Agronomy, 12, 2385. https://doi.org/10.3390/agronomy12102385 Search in Google Scholar

Puglisi, E., Fragoulis, G., Ricciuti, P., Cappa, F., Spaccini, R., Piccolo, A., Trevisan, M., & Crecchio, C. (2009). Effects of a humic acid and its size-fractions on the bacterial community of soil rhizosphere under maize (Zea mays L.). Chemosphere, 77, 829–837. https://doi.org/10.1016/j.chemosphere.2009.07.077 Search in Google Scholar

Rogala, B. (2020). Is the farmers who should care most about climate protection, because they will be most affected by the changes – interview with Dr Zbigniew Karachun. Downloaded from: https://300gospodarka.pl/wywiady/to-rolnicy-najmocniej-ze-wszystkich-odczuja-skutki-zmianklimatu-wywiad-z-dr-zbigniewem-karaczunem (date of access: 14.02.2020). Search in Google Scholar

Rutkowska, A. (2016). Biostimulants in modern plant breeding. Studies & Reports of IUNG-PIB, 48(2), 65–80. https://doi.org/10.26114/sir.iung.2016.48.05 Search in Google Scholar

Rzekanowski, C. (2000). Prospects for plant irrigation in view of the upcoming changes in Polish agriculture. Ecology and Technology, 8(3), 83–91. Search in Google Scholar

Sharif, M., Khattak, R. A., & Sarir, M. S. (2002). Effect of different levels of lignitic coal derived humic acid on growth of maize plants. Communications in Soil Science and Plant Analysis, 33, 3567–3580. https://doi.org/10.1081/CSS-120015906 Search in Google Scholar

Soil Conservation. (2021). European Parliament resolution of 28 April 2021 on soil protection (2021/2548(RSP)). Texts adopted – Soil protection – Wednesday 28 April 2021 (www.europa.eu) Search in Google Scholar

Spigarelli, S. A. (1992). Stimulation of anion root growth by peat humic substances. Effects of extraction, temperature and pH. In 6th Meeting IHSS (p. 79), Monopoli. Search in Google Scholar

Turgay, O. C., Erdogan, E. E., & Karaca, A. (2010). Effect of humic deposit (leonardite) on degradation of semi-volatile and heavy hydrocarbons and soil quality in crude-oil-contaminated soil. Environmental Monitoring and Assessment, 170, 45–58. https://doi.org/10.1007/s10661-009-1213-1 Search in Google Scholar

Ulukan, H. (2008). Effect of soil applied humic acid at different sowing times on some yield components of wheat (Triticum spp.) hybrids. International Journal of Botany Studies, 4(2), 164–175. Search in Google Scholar

WRB (World reference base for soil resources). (2022). International soil classification system for naming soils and creating leg-ends for soil maps. 4th ed. https://www.isric.org/sites/default/files/WRB_fourth_edition_2022-12-18.pdf Search in Google Scholar

eISSN:
1338-5259
Language:
English
Publication timeframe:
2 times per year
Journal Subjects:
Industrial Chemistry, Green and Sustainable Technology