4.8 Article

Unexpectedly efficient ion desorption of graphene-based materials

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NATURE COMMUNICATIONS
卷 13, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41467-022-35077-9

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资金

  1. National Natural Science Foundation of China [12074341, U1832150, 11875236, 11975206, 12075211, 11905186]
  2. Fundamental Research Funds for the Provincial Universities of Zhejiang [2020TD001]
  3. Scientific Research and Developed Fund of Zhejiang AF University [2017FR032]
  4. Scientific Research and Developed Funds of Ningbo University [ZX2022000015]

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By adding low amounts of aluminum ions, rapid and efficient desorption of ions on magnetite-graphene oxide can be achieved. This method has lower consumption of reagents and higher desorption rate compared to conventional methods, and can be applied for ion enrichment in various fields.
Ion desorption is extremely challenging for adsorbents with superior performance, and widely used conventional desorption methods involve high acid or base concentrations and large consumption of reagents. Here, we experimentally demonstrate the rapid and efficient desorption of ions on magnetite-graphene oxide (M-GO) by adding low amounts of Al3+. The corresponding concentration of Al3+ used is reduced by at least a factor 250 compared to conventional desorption method. The desorption rate reaches similar to 97.0% for the typical radioactive and bivalent ions Co2+, Mn2+, and Sr2+ within similar to 1 min. We achieve effective enrichment of radioactive Co-60 and reduce the volume of concentrated Co-60 solution by approximately 10 times compared to the initial solution. The M-GO can be recycled and reused easily without compromising its adsorption efficiency and magnetic performance, based on the unique hydration anionic species of Al3+ under alkaline conditions. Density functional theory calculations show that the interaction of graphene with Al3+ is stronger than with divalent ions, and that the adsorption probability of Al3+ is superior than that of Co2+, Mn2+, and Sr2+ ions. This suggests that the proposed method could be used to enrich a wider range of ions in the fields of energy, biology, environmental technology, and materials science.

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