Dual-functional metal-organic frameworks-based hydrogel micromotor for uranium detection and removal

Self-propelled micro/nanomotors have attracted great attention for environmental remediation, however, their use for radioactive waste detection and removal has not been addressed. Engineered micromotors that are able to combine fast detection and highly adsorptive capability are promising tools for...

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Veröffentlicht in:Journal of hazardous materials 2024-04, Vol.467, p.133654-133654, Article 133654
Hauptverfasser: Zhang, Xinle, Chen, Ling, Fu, Linhui, Feng, Kai, Gong, Jiang, Qu, Jinping, Niu, Ran
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Sprache:eng
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Zusammenfassung:Self-propelled micro/nanomotors have attracted great attention for environmental remediation, however, their use for radioactive waste detection and removal has not been addressed. Engineered micromotors that are able to combine fast detection and highly adsorptive capability are promising tools for radioactive waste management but remain challenging. Herein, we design self-propelled micromotors based on zeolite imidazolate framework (ZIF-8)-hydrogel composites via inverse emulsion polymerization and show their potential for efficient uranium detection and removal. The incorporation of magnetic ferroferric oxide nanoparticles enables the magnetic recycling and actuation of the single micromotors as well as formation of swarms of worm-like or tank-treading structure. Benefited from the enhanced motion, the micromotors show fast and high-capacity uranium adsorption (747.3 mg g−1), as well as fast uranium detection based on fluorescence quenching. DFT calculation confirms the strong binding between carboxyl groups and uranyl ions. The combination of poly(acrylic acid-co-acrylamide) with ZIF-8 greatly enhances the fluorescence of the micromotor, facilitating the high-resolution fluorescence detection. A low detection limit of 250 ppb is reached by the micromotors. Such self-propelled micromotors provide a new strategy for the design of smart materials in remediation of radioactive wastewater. [Display omitted] •MOF-hydrogel composites based micromotor is prepared via inverse emulsion polymerization.•Micromotors show controllable motion and formation of worm-like and tank-treading swarms.•The micromotors show simultaneous uranium detection and removal.•Micromotors show fast and high-capacity uranium adsorption (747.3 mg g−1).•A low detection limit of 250 ppb is reached by fluorescence microscopy.
ISSN:0304-3894
1873-3336
DOI:10.1016/j.jhazmat.2024.133654