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January 22, 2026Gels0 citationsOpen Access

Features of Uranium Recovery from Complex Aqueous Solutions Using Composite Sorbents Based on Se-Derivatives of Amidoximes

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ETEduard A. Tokar’AMA. I. MatskevichKMK. V. Maslov

Key Points

  • This research aims to evaluate the performance of composite adsorbents for efficient uranium recovery from complex aqueous solutions.
  • Evaluated sorption efficiency of composite adsorbents under static conditions for trace uranium.
  • Investigated the effects of competing ions and solution pH on sorption efficiency.
  • Assessed reusability of materials over multiple sorption-desorption cycles using optimal eluent agents.
  • Utilized physicochemical methods to analyze uranium sorption mechanisms.
  • Achieved sorption efficiencies of 80-98% for uranium recovery from various water types.
  • Observed distribution coefficients ranging from 104 to 106 cm3 g−1.
  • Identified an optimal regenerating eluent with >95% desorption efficiency.
  • Demonstrated high sorption capacity and practical potential for uranium concentration from high-salinity solutions.

Abstract

The article presents a comprehensive comparative performance evaluation and validation of composite adsorbents based on the Se-derivative of 4-amino-N′-hydroxy-1,2,5-oxadiazole-3-carboximidamide for U (VI) recovery from complex multicomponent aqueous media. Our results indicate the composite materials to be comparable to, and in some cases to surpass, existing adsorbents in recovery efficiency. Under static sorption conditions for trace U (VI) from real multicomponent solutions (tap, river, and sea water), the sorption efficiency reached 80–98%, while the distribution coefficients ranged from 104 to 106 cm3 g−1. The sorption-selectivity properties of the materials were evaluated in the presence of competing ions (EDTA and oxalate ions), which possess a high chelating capacity and a strong tendency to form complexes with uranium. The dependence of sorption efficiency on the concentration of these ions and the solution pH was investigated. The possibility of reusing the materials over multiple sorption-desorption cycles was assessed. An optimal regenerating eluent agent was identified (NaHCO3/NH4NO3), providing a desorption efficiency of >95% without degrading the material’s sorption properties over repeated cycles. Using a combination of physicochemical methods, including sorption techniques, the mechanism of uranium sorption and its dependence on the material structure were determined. The efficiency of uranium recovery from multicomponent natural waters was also investigated under dynamic conditions over repeated sorption-desorption cycles. The results demonstrate through comparative analysis that the developed composites exhibit a high sorption capacity and possess a high practical potential for the concentration and recovery of uranium from high-salinity solutions with complex composition.

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Cite This Study

Tokar’ et al. (2026) studied this question.

synapsesocial.com/papers/6971bdec642b1836717e2927https://doi.org/10.3390/gels12010084
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