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A Hybrid Metal-Organic Framework-Reduced Graphene Oxide Nanomaterial for Selective Removal of Chromate from Water in an Electrochemical Process. | LitMetric

AI Article Synopsis

  • Hexavalent chromium (Cr(VI)) is a dangerous groundwater contaminant, and this study presents an innovative electrochemical method for its removal using a hybrid MOF@rGO nanomaterial.
  • The nanomaterial consists of a cobalt-based metal-organic framework (Co-MOF) on reduced graphene oxide (rGO), which allows for efficient and selective adsorption of CrO, outperforming other common anions like Cl and As(III).
  • This process not only achieves over 100% charge efficiency through strong physisorption but also enables the regeneration of the Co-MOF by reversing the applied voltage, transforming toxic Cr(VI) into less harmful forms without needing additional chemicals.

Article Abstract

Hexavalent chromium Cr(VI) is a highly toxic groundwater contaminant. In this study, we demonstrate a selective electrochemical process tailored for removal of Cr(VI) using a hybrid MOF@rGO nanomaterial synthesized by growth of a nanocrystalline, mixed ligand octahedral metal-organic framework with cobalt metal centers, [Co(btec)(bipy)(DMF)] (Co-MOF), on the surface of reduced graphene oxide (rGO). The rGO provides the electric conductivity necessary for an electrode, while the Co-MOF endows highly selective adsorption sites for CrO. When used as an anode in the treatment cycles, the MOF@rGO electrode exhibits strong selectivity for adsorption of CrO over competing anions including Cl, SO, and As(III) and achieves charge efficiency (CE) >100% due to the strong physisorption of CrO by Co-MOF; both electro- and physisorption capacities are regenerated with the reversal of the applied voltage, when highly toxic Cr(VI) is reduced to less toxic reduced Cr species and subsequently released into brine. This approach allows easy regeneration of the nonconducting Co-MOF without any chemical addition while simultaneously transforming Cr(VI), inspiring a novel electrochemical method for highly selective degradation of toxic contaminants using tailor-designed electrodes with high affinity adsorbents.

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Source
http://dx.doi.org/10.1021/acs.est.0c04703DOI Listing

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