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Degradation of ciprofloxacin using CoFeO@three-dimensional TiO@graphene aerogels composite: kinetic, reusability, mineralization, degradation pathway, and toxicity assessment. | LitMetric

AI Article Synopsis

  • The study investigates the degradation of ciprofloxacin (CIP) using a photocatalyst made from CoFeO@3D-TiO and graphene aerogel, achieving complete removal under specific conditions within 60 minutes while showing high reusability.
  • Intermediate products from the degradation process were found to be non-toxic to E. coli, and total organic carbon (TOC) analysis showed 86% mineralization of CIP, indicating successful transformation of non-biological sewage to biodegradable effluent.
  • The research emphasizes the effectiveness of photocatalysis over simple adsorption with a significantly faster reaction rate, showcasing the potential environmental benefits of using the synthesized photocatalyst under visible light.

Article Abstract

An investigation into the degradation of ciprofloxacin (CIP) under visible light was carried out using an efficient photocatalyst, i.e., CoFeO@3D-TiO@GA, synthesized by doping CoFeO@three-dimensional-TiO into a hierarchical porous graphene aerogel. Optimal conditions for achieving complete removal of CIP involved a reaction time of 60 min, a catalyst dose of 0.6 g/L, an initial CIP concentration of 25 mg/L, and a solution pH range of 3-5. The reusability of CoFeO@3D-TiO@GA was observed to remain high even after four consecutive cycles, as the CIP degradation only slightly decreased from 94.3 to 87.1%. Following a 2-h photocatalytic degradation process, the intermediate products within the CIP solution no longer posed a threat to E. coli. The TOC analysis confirmed that CIP achieved 86% total mineralization. In the raw sewage, the BOD/COD and BOD/TOC ratios were 0.774 and 0.232, respectively. However, after a 120-min photocatalytic reaction, these ratios increased to 1.38 and 0.754, respectively. These findings suggest that non-biological sewage can be successfully transformed into biodegradable effluent through photocatalytic degradation. The photocatalytic process has a reaction rate coefficient that is 8.7 to 20.7 times higher than the adsorption process, depending on the concentration. The half-life constant is 117.4 min for the optimal concentration of 10 mg/L for the adsorption process, while for the photocatalytic process, it is 6.24 min. The research has highlighted the importance of integrating adsorption and photocatalysis, whereby primary reactive oxidative species, including superoxide and hydroxyl radicals, were identified. The study presents a pioneering approach for producing CoFeO@3D-TiO@GA, which has promising potential for environmental applications utilizing visible light.

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Source
http://dx.doi.org/10.1007/s11356-024-35787-1DOI Listing

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