SORPTION OF METAL IONS BY CARBON SORBENTS OBTAINED FROM WASTE

Khobotova, E. B., Kaliuzhna, Iu. S., Datsenko, V. V., Larin, V. I. (2022). Toxic and hydraulic activity of blast furnace slag as the main criteria for choosing the technology of their utilization. J. of Chem. and Techn., 29(2), 312−320. https://doi.org/10.15421/jchemtech.v29i2.228352

Edwards, М., Benjamin, M. M. (1989). Regeneration and Reuse of Iron Hydroxide Adsorbents in Treatment of Metal-Bearing Wastes. Water Pollution Control Federation, 61(4), 481−490. http://www.jstor.org/stable/25046963

Orfanova, M. M., Orfanova, M. M., Pustogov, V. I. (2013). [Perspective Directions of Use of Galvanic Production Waste]. Energy technologies and resource saving, 4, 47–51. (in Ukrainian)

Larin, V., Datsenko, V., Egorova, L., Hraivoronskaia, I., Herasymchuk, T. (2020). Physical and chemical properties of copper-zinc galvanic sludge in the process of thermal treatment. French-Ukrainian Journal of Chemistry, 9(1), 66–75. https://doi.org/10.17721/fujcV8I1P66-75

Datsenko, V. V., Khobotova, E. B., Belichenko, E. A., Vankevich, A. V. (2021). [Multifunctionality of a composite material based on copper-zinc ferrite]. J. of Chem. And Techn., 29(4), 476−484. (in Russian) https://doi.org/10.15421/jchemtech.v29i4.240173

Datsenko, V. V., Khobotova, E. B., Vankevich, O. V., Tolmachov, S. M. (2022). Technically useful properties of copper-zinc ferrites. Functional Materials, 29(1), 62−71. https://doi.org/10.15407/fm29.01.62

Datsenko, V. V., Khobotova, E. B., Kolodiazhnyi, V. M., Lisin, D. O. (2022). [Effectiveness of cleaning solutions from organic dyes when using copper-zinc ferrites]. J. of Chem. and Techn., 30(2), 184−191. (in Ukrainian) https://doi.org/10.15421/jchemtech.v30i2.250987

Datsenko, V. V., Khobotova, E. B., Kolodiazhnyi, V. M., Lisin, D. O. (2022). The use of ferrite composites for waste water purification from organic dyes. Functional Materials, 29(3), 462−467. https://doi.org/10.15407/fm29.03.462

Sartova, K., Omurzak, E., Kambarova, G., Dzhumaev, I., Borkoev, B., Abdullaeva, Zh. (2019). Activated carbon obtained from the cotton processing wastes. Diamond and Related Materials, 91, 90−97. https://doi.org/10.1016/j.diamond.2018.11.011

Zubrik, A., Matik, M., Hredzák, S., Lovás, M., Danková, Z., Kováčová, M., Briančin, Ja. (2017). Preparation of chemically activated carbon from waste biomass by single-stage and two-stage pyrolysis. J. of Cleaner Production 143, 643−653. https://doi.org/10.1016/j.jclepro.2016.12.061

Mukhin, V., Bogdanovich, N. (2022). Activated carbons from vegetable waste. J. Advanced Materials and Technologies, 7(2), 135–148. https://doi.org/10.17277/jamt.2022.02.pp.135-148

Gumus, H., Buyukkidan, B. (2023). Eeffect of different chemicals on the carbonization behaviors and pollution removal performance of biochar adsorbents derived from textile waste. Azerbaijian Chemical J., 1, 97–107. https://doi.org/10.32737/0005-2531-2023-1-97-107

Chemerys, V., Baltrenalte, E. (2018). A review of lignocellulosic biochar modification towards enhanced biochar selectivity and adsorption capacity of potentially toxic elements. Ukrainian J. of Ecology, 8, 21–32. https://doi.org/10.15421/2018_183

Kuroki, A., Hiroto, M., Urushihara, Y., Horikawa, T., Sotowa, K., Alcántara Avila, J. R. (2019). Adsorption mechanism of metal ions on activated carbon. Adsorption, 25, 1251–1258. https://doi.org/10.1007/s10450-019-00069-7

Li, J., Dong, X., Liu, X., Xu, X., Duan, W., Park, J., Gao, L., Lu, Y. (2022). Comparative Study on the Adsorption Characteristics of Heavy Metal Ions by Activated Carbon and Selected Natural Adsorbents. Sustainability, 14(23), 15579. https://doi.org/10.3390/su142315579

Sato, S., Yoshihara, K., Moriyama, K., Machida, M., Tatsumoto, H. (2007). Influence of activated carbon surface acidity on adsorption of heavy metal ions and aromatics from aqueous solution. Applied Surface Science, 253(20), 8554–8559. https://doi.org/10.1016/j.apsusc.2007.04.025

Salman, S. D., Rasheed, I. M., Mohammed, A. K. (2021). Adsorption of heavy metal ions using activated carbon derived from Eichhornia (water hyacinth). IOP Conf. Ser.: Earth Environ. Sci., 779, 012074. https://doi.org/10.1088/1755-1315/779/1/012074

Paredes-Doig, A., Pinedo-Flores, A., Aylas-Orejón, J., Obregón-Valencia, D., Sun Kou, M. (2020). The interaction of metallic ions onto activated carbon surface using computational chemistry software. Adsorption Science & Technology, 38(5−6), 191–204. https://doi.org/10.1177/0263617420919234

Khokhlov, A. V., Khokhlova, L. I. (2022). Modified rice husk biochar for binding Cd(II), Cu(II) ions in aqueous solutions. J. of Chem. and Techn., 30(4), 659–666. https://doi.org/10.15421/jchemtech.v30i4.268174

Khokhlov, A. V., Sych, N. V., Khokhlova, L. I. (2022). Using modified biochar from bagassa for removal heavy metal. J. of Chem. And Techn., 30(3), 459–465. https://doi.org/10.15421/jchemtech.v30i3.262094

Lyubchik, S. I., Lyubchik, A. I., Galushko, O. L., Tikhonova, L. P., Vital, Jo., Fonseca, I. M., Lyubchik, S. B. (2004). Kinetics and thermodynamics of the Cr (III) adsorption on the activated carbon from co-mingled wastes. Colloids and Sufaces A Physicochem. Eng. Aspects, 242(1–3), 151–158. https://doi.org/10.1016/j.colsurfa.2004.04.066

Khobotova, E. B., Datsenko, V. V. (2023). [Sorption properties of oxidized and non-oxidized activated carbon with respect to copper(II) ions]. Visnyk Nats. technical KhPI University. Ser.: Chemistry, chem. technology and ecology, 9(1), 56–59. (in Ukrainian) https://doi.org/10.20998/2079-0821.2023.01.08

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