Dual-stimuli-responsive CuS-based micromotors for efficient photo-Fenton degradation of antibiotics

J Colloid Interface Sci. 2021 Dec:603:685-694. doi: 10.1016/j.jcis.2021.06.142. Epub 2021 Jun 29.

Abstract

Antibiotics as emerging pollutants in water pose great risks to human health. Due to their persistence in the environment, advanced oxidation processes (AOPs) have been proposed for the degradation of antibiotics. Therefore, developing efficient catalysts for AOPs becomes critical for the removal of antibiotics. Herein, we develop self-propelled CuS-based micromotors (CuS@Fe3O4/Pt) as active heterogenous catalysts for efficient photo-Fenton degradation of antibiotics. Combining the merits of conventional heterogenous and homogenous catalysts, the prepared micromotors are easy to recycle and free of secondary pollution risks, while demonstrating high degradation efficiency due to self-induced intensification of mass transfer via autonomous motion and microbubble generation. The H2O2 in the Fenton reagents can serve as the fuel for the micromotors to drive their self-propulsion by bubbles generated from catalytic decomposition of H2O2 by the platinum layer. The dual-stimuli-responsiveness of the micromotors to magnetic field and light irradiation allows multi-modes of propulsion and guidance in different systems. The efficient photothermal effect of CuS enables the micromotors to achieve collective phototactic motion toward light, whereas magnetic responsiveness facilitates the recovery and collection of the micromotors. The synergistic effect of CuS and Fe3O4 NPs in H2O2 under visible light irradiation generates a large amount of OH· and ·O2- to effectively degrade tetracycline within several minutes. With these advantages, the dual-stimuli-responsive CuS-based micromotors provide a new strategy for enhanced degradation of antibiotics in water purification applications.

Keywords: Antibiotics; Degradation of pollutants; Micromotors; Photo-Fenton reaction.

MeSH terms

  • Anti-Bacterial Agents / pharmacology
  • Copper
  • Humans
  • Hydrogen Peroxide*
  • Water Purification*

Substances

  • Anti-Bacterial Agents
  • Copper
  • Hydrogen Peroxide
  • cupric sulfide