The search for effective solutions to recover soil and vegetation cover in contaminated areas of the town of Karabash
- 1 — Ph.D. Director of the Scientific Center Empress Catherine II Saint Petersburg Mining University ▪ Orcid
- 2 — Ph.D. Associate Professor Empress Catherine II Saint Petersburg Mining University ▪ Orcid ▪ Scopus
- 3 — Engineer of the Educational and Research Laboratory Empress Catherine II Saint Petersburg Mining University ▪ Orcid
Abstract
The operations of non-ferrous metallurgy industries lead to the formation of persistent polymetallic contamination in the soil cover of the surrounding areas, which leads to the degradation of the soil and vegetation cover following prolonged negative exposure. Given the scale of the problem, the authors conducted a series of experimental studies to model plant growth on highly contaminated acidic soils to find a comprehensive solution for recovering the soil and vegetation cover. The experiment involved identifying the most effective soil additives for restoring the acidic soils of the town of Karabash in the Chelyabinsk Region, which are characterized by high levels of heavy metal contamination. Based on the results of theoretical studies, lime, low-moor peat, vermiculite, biochar, and melatonin were selected as soil-improving additives for the experiment. The results of laboratory studies on the soil composition and properties before and after the experiment are presented, as well as the results of visual, quantitative, and chemical assessments of plant biomass. Based on the experimental studies, the most effective soil amendments were identified, which not only reduce the impact of heavy metals on plants but also increase their biomass. The best results were obtained by neutralizing the soil with lime, improving its physical and mechanical properties through the addition of vermiculite, increasing the organic matter content using low-moor peat, and adding broad-spectrum soil-improving additives such as biochar and melatonin. The combination of soil additives made it possible to neutralize highly acidic soils to a pH of 6.6-7.5, reduce the concentration of mobile copper – the primary contaminant – by a factor of four or more, and grow sustainable root and above-ground plant parts.
This work was completed as part of the State assignment of the Ministry of Science and Higher Education of the Russian Federation “Study of processes involved in the integrated development of the Earth’s subsoil and the deep processing of geological resources” (FSRW-2026-0003).
References
- Koptsik G.N. Modern Approaches to Remediation of Heavy Metal Polluted Soils: A Review. Eurasian Soil Science. 2014. Vol. 47. N 7, p. 707-722. DOI: 10.1134/S1064229314070072
- Barsova N., Yakimenko O., Tolpeshta I., Motuzova G. Current state and dynamics of heavy metal soil pollution in Russian Federation – A review. Environmental Pollution. 2019. Vol. 249, p. 200-207. DOI: 10.1016/j.envpol.2019.03.020
- Chukaeva M.A., Koshenkova A.A., Malygin N.A. et al. Biochemical Assessment of Heavy-Metal Contamination of the Soil and Vegetation Cover of Kanonersky Island. Moscow University Soil Science Bulletin. 2025. Vol. 80. N 1 (Suppl.), p. S12-S22. DOI: 10.3103/S0147687425700462
- Bykova M.V., Malyukhin D.M. Manmade soil created using waste water mud: The potential for reclamation of mining-disturbed land. Mining Informational and Analytical Bulletin. 2025. N 9, p. 36-52 (in Russian). DOI: 10.25018/0236_1493_2025_9_0_36
- Barkan V.Sh., Lyanguzova I.V. Concentration of Heavy Metals in Dominant Moss Species as an Indicator of Aerial Technogenic Load. Russian Journal of Ecology. 2018. Vol. 49. N 2, p. 128-134. DOI: 10.1134/S1067413618020030
- Yurkevich N.V., Elkov I.N., Gureev V.N. et al. Technogenic impact on the environment in the Russian Arctic by the example of the Norilsk Industrial. Bulletin of the Tomsk Polytechnic University. Geo Аssets Engineering. 2021. Vol. 332. N 12, p. 230-249 (in Russian). DOI: 10.18799/24131830/2021/12/3207
- Rykova T.V. Silvicultural and ecological assessment of pine ecosystems resilience to heavy metal environmental pollution: Avtoref. dis. ... kand. s.-kh. nauk. Мoscow: Vserossiiskii nauchno-issledovatelskii institut lesovodstva i mekhanizatsii lesnogo khozyaistva, 2024, p. 16 (in Russian).
- Danilov A.S., Kremcheev E.A., Lozovaya A.S., Gaydak V.O. Monitoring soil pollution in the town of Monchegorsk: Causes and consequences. Mining Informational and Analytical Bulletin. 2025. N 9, p. 53-66 (in Russian). DOI: 10.25018/0236_1493_2025_9_0_53
- Shabanov M.V., Marichev M.S. Geochemical anomalies of heavy metals in the soils of natural and anthropogenic landscapes (on the example of the Krasnouralsky industrial complex). Bulletin of the Tomsk Polytechnic University. Geo Аssets Engineering. 2022. Vol. 333. N 6, p. 230-239 (in Russian). DOI: 10.18799/24131830/2022/6/3545
- Petukhov A.S., Kremleva T.A., Levchuk E.D. et al. Heavy metal accumulation in soils and leaves of Betula pendula in urban pollution conditions. Theoretical and Applied Ecology. 2025. N 1, p. 83-91 (in Russian). DOI: 10.25750/1995-4301-2024-4-083-091
- Khokhryakov A.V., Studenok G.A., Frolov S.G., Rybnikov P.A. Territorial eco-technological approach to handling the accumulated environmental damage objects as a structure-forming element of the ensuring the technogenic safety of mining regions. News of the Ural State Mining University. 2024. Iss. 2 (74), p. 132-141 (in Russian). DOI: 10.21440/2307-2091-2024-2-132-141
- Nureev R.R., Pashkevich M.A., Kharko P.A. Assessment of the impact of copper ore processing waste on surface and groundwater. Geology and Geophysics of Russian South. 2022. Vol. 12. N 4, p. 169-179 (in Russian). DOI: 10.46698/VNC.2022.37.95.013
- Pashkevich M.A., Alekseenko A.V., Nureev R.R. Environmental damage from the storage of sulfide ore tailings. Journal of Mining Institute. 2023. Vol. 260, p. 155-167. DOI: 10.31897/PMI.2023.32
- Zalesov S.V., Bachurina A.V., Bachurina S.V. Condition forest stands undergone the impact of ZAO “Karabashmed” industrial pollutants and their components reaction on renewal cutting carrying on. Yekaterinburg: Ural State Forest Engineering University, 2017, p. 276 (in Russian).
- Salnikova Yu., Strelkova Yu. Search for effective solutions to remediate vegetation cover on contaminated soils of Karabash city. Geology in the Developing World: Sbornik nauchnykh trudov po materialam XVII Mezhdunarodnoi nauchno-prakticheskoi konferentsii studentov, aspirantov i molodykh uchenykh, 10-12 April 2024, Perm, Russia. Perm: Perm State University, 2024, p. 586-590 (in Russian).
- Gorbunova V.D., Menshchikov S.L. Silver birch (Betula pendula Roth) leaves macroelement composition in aerotechnogenic pollution by “Karabashmed” gradient. Forestry Bulletin. 2023. Vol. 27. N 5, p. 170-178 (in Russian). DOI: 10.18698/2542-1468-2023-5-170-178
- Okorkov V.V. To the theory of chemical melioration of acid soils. Agricultural Chemistry. 2019. N 9, p. 3-17 (in Russian). DOI: 10.1134/S0002188119090096
- Sánchez-Castro I., Molina L., Prieto-Fernández M.-Á., Segura A. Past, present and future trends in the remediation of heavy-metal contaminated soil – Remediation techniques applied in real soil-contamination events. Heliyon. 2023. Vol. 9. Iss. 6. N e16692. DOI: 10.1016/j.heliyon.2023.e16692
- Qayyum S., Khan I., Ke Meng et al. A review on remediation technologies for heavy metals contaminated soil. Central Asian Journal of Environmental Science and Technology Innovation. 2020. Vol. 1, p. 21-29. DOI: 10.22034/CAJESTI.2020.01.03
- Wei Liu, Chenchen Zhao, Yanli Yuan et al. Physicochemical Properties, Metal Availability, and Bacterial Community Structure in Cadmium-Contaminated Soil Immobilized by Nano-Montmorillonite. Frontiers in Environmental Science. 2022. Vol. 10. N 908819. DOI: 10.3389/fenvs.2022.908819
- Rudzisha E., Petrova T.A. The evaluation of sewage sludge as soil amendment for post-mining land rehabilitation. Mining Informational and Analytical Bulletin. 2022. N 10-2, p. 127-134 (in Russian). DOI: 10.25018/0236_1493_2022_102_0_127
- Smirnov Yu.D., Suchkov D.V., Danilov A.S., Goryunova T.V. Artificial soils for restoration of disturbed land productivity. Eurasian Mining. 2021. N 2, p. 92-96. DOI: 10.17580/em.2021.02.19
- Pukalchik M., Mercl F., Terekhova V., Tlustoš P. Biochar, wood ash and humic substances mitigating trace elements stress in contaminated sandy loam soil: Evidence from an integrative approach. Chemosphere. 2018. Vol. 203, p. 228-238. DOI: 10.1016/j.chemosphere.2018.03.181
- Menhas S., Xijia Yang, Hayat K. et al. Pleiotropic melatonin-mediated responses on growth and cadmium phytoextraction of Brassica napus: A bioecological trial for enhancing phytoremediation of soil cadmium. Journal of Hazardous Materials. 2023. Vol. 457. N 131862. DOI: 10.1016/j.jhazmat.2023.131862
- Bondarenko N.A., Stepanov A.F., Prokhorova N.A. Parterre grasess for Siberia. Vestnik of Omsk SAU. 2016. N 1 (21), p. 15-21 (in Russian).
- Timoshkin O.A., Timoshkina O.Yu., Timoshchuk E.V. Evaluation of grass mixtures of a lawn type in the conditions of forest-steppe of the Middle Volga region. Agricultural Science Euro-North-East. 2021. Vol. 22. N 5, p. 706-714 (in Russian). DOI: 10.30766/2072-9081.2021.22.5.706-714
- Lu-Lu He, Dao-You Huang, Quan Zhang et al. Meta-analysis of the effects of liming on soil pH and cadmium accumulation in crops. Ecotoxicology and Environmental Safety. 2021. Vol. 223. N 112621. DOI: 10.1016/j.ecoenv.2021.112621
- Petrova A.G., Slukovskaya M.V., Mosendz I.A. et al. Effectiveness of vermiculite-lizardite materials for reduction of mobility of potentially toxic metals in peat soil. Trudy Fersmanovskoi nauchnoi sessii GI KNTS RAS. Apatity: Geological Institute of the KSC RAS, 2022. N 19, p. 290-295 (in Russian). DOI: 10.31241/FNS.2022.19.053
- Parmar S., Singh V., Sharma V.K. et al. Effect of Vermiculite Soil Amendment on Immobilization of Selected Heavy Metals of Rhizospheric Zone of Maize. Communications in Soil Science and Plant Analysis. 2022. Vol. 53. Iss. 3, p. 384-395. DOI: 10.1080/00103624.2021.2017444
- Mikhailov A.V., Piirainen V.Yu., Bobrova E.M., Smirnov A.I. Analysis of the prospects to use peat-based soil conditioners for reclamation of disturbed lands. Russian Mining Industry. 2025. N 2, p. 124-130 (in Russian). DOI: 10.30686/1609-9192-2025-2-124-130
- Kirdei T.A. The effect of humic acids from lowland peat on the remediation properties of wheat plants under complex heavy metal contamination. Izvestiya vuzov. Prikladnaya khimiya i biotekhnologiya. 2021. Vol. 11. N 2, p. 228-235 (in Russian). DOI: 10.21285/2227-2925-2021-11-2-228-235
- Sijia Deng, Xinwei Lu, Xiuduan Chen et al. Research on biochar remediation of heavy metal contaminated soil based on CiteSpace visual analysis. Clean Technologies and Environmental Policy. 2024. Vol. 26. Iss. 9. P. 2801-2817. DOI: 10.1007/s10098-024-02767-5
- Yining Gao, Pan Wu, Paramsothy Jeyakumar et al. Biochar as a potential strategy for remediation of contaminated mining soils: Mechanisms, applications, and future perspectives. Journal of Environmental Management. 2022. Vol. 313. N 114973. DOI: 10.1016/j.jenvman.2022.114973
- Iqbal N., Tanzeem-ul-Haq H.S., Gull-e-Faran et al. Soil Amendments and Foliar Melatonin Reduced Pb Uptake, and Oxidative Stress, and Improved Spinach Quality in Pb-Contaminated Soil. Plants. 2023. Vol. 12. Iss. 9. N 1829. DOI: 10.3390/plants12091829
- Xie Zhiming, Ghafoor A, Munir M. et al. Reclaiming multi-contaminated soil: melatonin alleviates cadmium and microplastic toxicity to restore rice growth and yield. RSC Advances. 2026. Vol. 16. Iss. 10, p. 8558-8572. DOI: 10.1039/d5ra10106a
- Meng Na, Chenyang Zhang, Shangqi Xu et al. Melatonin application enhances the remediation of cadmium-contaminated soils by Cinnamomum camphora. Science of The Total Environment. 2025. Vol. 968. № 178912. DOI: 10.1016/j.scitotenv.2025.178912
- Fayuan Wang, Shuqi Zhang, Peng Cheng et al. Effects of Soil Amendments on Heavy Metal Immobilization and Accumulation by Maize Grown in a Multiple-Metal-Contaminated Soil and Their Potential for Safe Crop Production. Toxics. 2020. Vol. 8. Iss. 4. N 102. DOI: 10.3390/toxics8040102
- Sánchez N., Merbach I., Drabesch S. et al. Bioavailability and phyto-extractability of metals in a peat-amended agricultural soil under climate stress. Journal of Environmental Management. 2025. Vol. 394. N 127167. DOI: 10.1016/j.jenvman.2025.127167
- Xinyi Nie, Xianhuai Huang, Man Li et al. Advances in Soil Amendments for Remediation of Heavy Metal-Contaminated Soils: Mechanisms, Impact, and Future Prospects. Toxics. 2024. Vol. 12. Iss. 12. N 872. DOI: 10.3390/toxics12120872
- Kremenetskaya I.P., Slukovskaya M.V., Ivanova L.A. et al. Agrochemical assessment of the effect of vermiculite on reducing ammonium ion mobility. RUDN Journal of Agronomy and Animal Industries. 2025. Vol. 20. N 4, p. 606-617 (in Russian). DOI: 10.22363/2312-797X-2025-20-4-606-617
- Danilova E.D., Zlobin I.E., Efimova M.V. Short-Term Pretreatment with Melatonin Increases the Resistance of Barley Plants to the Subsequent Action of Cadmium. Russian Journal of Plant Physiology. 2023. Vol. 70. N 5, N 95. DOI: 10.1134/S1021443723600800
- Kholodova V.P., Vasilev S.V., Efimova M.V. et al. Exogenous Melatonin Protects Canola Plants from Toxicity of Excessive Copper. Russian Journal of Plant Physiology. 2018. Vol. 65. N 6, p. 882-889. DOI: 10.1134/S1021443718060080
- Moustafa-Farag M., Elkelish A., Dafea M. et al. Role of Melatonin in Plant Tolerance to Soil Stressors: Salinity, pH and Heavy Metals. Molecules. 2020. Vol. 25. Iss. 22. N 5359. DOI: 10.3390/molecules25225359
- Dikarev A.V., Dikarev V.G., Dikareva N.S. Researching of morphological, physiological, biochemical indexes and productivity of lead contrasting spring barley cultivars. Agricultural Chemistry. 2019. N 10, p. 72-84 (in Russian).
- Petrova T.A., Rudzisha E. Method for assessing the effectiveness of ameliorants in the reclamation of disturbed lands. The Eurasian Scientific Journal. 2021. Vol. 13. N 6, p. 12 (in Russian).
- Skugoreva S.G., Fokina A.I., Domracheva L.I. Heavy metal toxicity and barley plants, soil and rhizosphere microflora. Theoretical and Applied Ecology. 2016. N 2, p. 32-45 (in Russian).
- Chukaeva M.A., Petrov D.S., Malygin N.A. The use of the Calla Palustris for phytoremediation of industrial wastewater from metals in the conditions of the North on the example of JSC “Karelskiy Okatysh”. Arktika: ekologia i ekonomika. 2025. Vol. 15. N 3, p. 116-126 (in Russian). DOI: 10.25283/2223-4594-2025-3-116-126
- Flávio José Rodrigues Cruz, Raphael Leone da Cruz Ferreira, Susana Silva Conceição et al. Copper Toxicity in Plants: Nutritional, Physiological, and Biochemical Aspects. Advances in Plant Defense Mechanisms. IntechOpen, 2022. DOI: 10.5772/intechopen.105212