Track 3: Environmental Stewardship

129 Al-Shomali Z, Pereira A, Marques AC, Dinis ML (2025). State-of-the-Art Review on Removal of Naturally Occurring Radioactive Materials in Water. International Journal of Environmental Research and Public Health. 2025; 22(5):727. https://doi.org/10.3390/ijerph22050727 Chung, A.P., Sousa, T., Pereira, A., & Morais, P.V. (2014). Microorganisms–tools for bioremediation of uranium contaminated environments. Procedia Earth and Planetary Science, 8, 53-58. EU European Commission (2021). Pathway to a healthy planet for all: EU action plan "Towards zero pollution for air, water and soil" (COM/2021/400 final). EUR-Lex. https://eur-lex.europa.eu/legal-content/EN/TXT/?uri=CELEX:52021DC0400 Liu, Y., Biswas, B., Hassan, M., & Naidu, R. (2024). Green Adsorbents for Environmental Remediation: Synthesis Methods, Ecotoxicity, and Reusability Prospects. In Processes (Vol. 12, Issue 6). Multidisciplinary Digital Publishing Institute (MDPI). https://doi.org/10.3390/pr12061195 Zemskova, L. A., & Egorin, A. M. (2024). Chitosan-based composite materials – sorbents for the purification of liquid radioactive waste. Vestnik of the Far East Branch of the Russian Academy of Sciences. Hamza, M. F., et al. (2021). Review of biomass-based materials for uranium adsorption. Journal of Hazardous Materials. El-Naggar, M. R., et al. (2022). Green biochar-based adsorbent for radiocesium removal. Chemosphere. Al-Shaybe, M., et al. (2020). The Removal of Uranium and Thorium from Their Aqueous Solutions by 8-Hydroxyquinoline Immobilized Bentonite. Minerals. Shi, J., Jiang, L., et al. (2024). Efficient Separation of Uranium(VI) by CaCO3-Doped Chitosan with PO43– Modification: Adsorption Behaviors and Mechanism Study. ACS Applied Polymer Materials, 6(9).

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