ВИКОРИСТАННЯ БІОТЕХНОЛОГІЧНИХ ПРИЙОМІВ ДЛЯ ВИЛУЧЕННЯ ГУМІНОВМІСНИХ РЕЧОВИН З БУРОГО ВУГІЛЛЯ
Ключові слова:
humic substance, biotechnological extraction, brown coal waste, microorganismsАнотація
This paper examines the advantages of applying biotechnological approaches for the extraction of humic substances. Microbial biotransformation of brown coal waste represents an environmentally sustainable technique, allowing for the recovery of humic acids with enhanced biological activity compared to conventional extraction methods.
Посилання
Eyheraguibel B., Silvestre J., Morard P. Effects of humic substances derived from organic waste enhancement on the growth and mineral nutrition of maize. Bioresource Technology. 2008. Vol. 99, no. 10. P. 4206–4212. URL: https://doi.org/10.1016/j.biortech.2007.08.082.
Корнієнко Я. М., Степанюк А. Р. Процес вилучення гуміновмісних речовин з торфу: Монографія. [Електронне видання]. НТУУ "КПІ". 2015. 146 с.
Symanowicz, B., Toczko, R. Brown Coal Waste in Agriculture and Environmental Protection: A Review. Sustainability. 2023. Vol. 15. no. 18. P. 13371.
Holistic assessment of biochar and brown coal waste as organic amendments in sustainable environmental and agricultural applications / C. Amoah-Antwi et al. Water, Air, & Soil Pollution. 2021. Vol. 232, no. 3. URL: https://doi.org/10.1007/s11270-021-05044-z.
Restoration of soil quality using biochar and brown coal waste: A review / C. Amoah-Antwi et al. Science of The Total Environment. 2020. Vol. 722. P. 137852.
Evaluation of humic acids produced from Pakistani subbituminous coal by chemical and fungal treatments / M. A. Sabar et al. Fuel. 2020. Vol. 278. P. 118301.
Concentrating rare earth elements in brown coal humic acids by mechanochemical treatment / T. Skripkina et al. RSC Advances. 2021. Vol. 11, no. 57. P. 36016–36022.
Рhysical and chemical researches on the structure of humic acids / V. V. Kochubei та ін. Chemistry, Technology and Application of Substances. 2020. Т. 3, № 1. С. 22–26.
Technological properties of polymers obtained from humic acids of Ukrainian lignite / V. Lebedev et al. Petroleum and Coal. 2021. Vol. 63. no. 3. P. 646-654.
Effects of long term application of inorganic and organic fertilizers on soil organic carbon and physical properties in maize–wheat rotation / B. Singh Brar et al. Agronomy. 2015. Vol. 5, no. 2. P. 220–238. URL: https://doi.org/10.3390/agronomy5020220.
Skodras G., Kokorotsikos P., Serafidou M. Cation exchange capability and reactivity of low-rank coal and chars. Open Chemistry. 2014. Vol. 12, no. 1. P. 33–43.
Comparison of Physico-Chemical Properties of Various Lignites Treated by Mechanical Thermal Expression / J. Hulston et al. Coal Preparation. 2005. Vol. 25, no. 4. P. 269–293. URL: https://doi.org/10.1080/07349340500444505.
Polish brown coals waste Potential source of plants nutrients / B. Symanowicz et al. Ann. Univ. Mariae Curie-Skłod. Sect. E Agric. 2013, Vol. 68, P. 21–27.
Stabilization of Cr, Pb, and Zn in Soil Using Lignite / N. Uzinger et al. Soil and Sediment Contamination: An International Journal. 2013. Vol. 23, no. 3. P. 270–286. URL: https://doi.org/10.1080/15320383.2014.826620.
Impact of biochar and lignite‐based amendments on microbial communities and greenhouse gas emissions from agricultural soil / C. Li et al. Vadose Zone Journal. 2021. Vol. 20, no. 2. URL: https://doi.org/10.1002/vzj2.20105.
Dong L., Yuan Q., Yuan H. Changes of chemical properties of humic acids from crude and fungal transformed lignite. Fuel. 2006. Vol. 85, no. 17-18. P. 2402–2407. URL: https://doi.org/10.1016/j.fuel.2006.05.027.
Gokcay C. F., Kolankaya N., Dilek F. B. Microbial solubilization of lignites. Fuel. 2001. Vol. 80, no. 10. P. 1421–1433. URL: https://doi.org/10.1016/s0016-2361(01)00010-2.