Photodegradation of polyethylene debris in water by sulfur-doped TiO2: system optimization, degradation mechanism, and reusability

Environ Sci Pollut Res Int. 2024 Jan;31(3):3951-3963. doi: 10.1007/s11356-023-31460-1. Epub 2023 Dec 14.

Abstract

Given the immense threats of microplastics, we herein investigate photodegrading the debris of polyethylene bags (PBs) by sulfur-doped titanium dioxide. The optimization of operating parameters showed that controlling the water pH at 3 and introducing PBs by 0.10 g/L under a catalyst dose of 1.25 g/L reduced the polyethylene mass by 3.10% in 7 h, whereas raising the catalyst dose to 3 g/L improved the mass reduction to 4.72%. The extension of degradation time to 100 h at pH 3, catalyst dosage of 3 g/L, and PBs concentration of 0.10 g/L increased the mass loss ratio to 21.74%. Scanning electron microscopy of PBs after 100 h of photodegradation showed cracks on the surface accompanied by the increase of carbonyl index from 0.52 to 1.41 confirming the breakdown of the polymeric chain. Total organic carbon increased from 0.80 to 7.76 mg/L in the first 10 h of photodegradation, then decreased to 1 mg/L after extending the reaction time to 100 h due to the mineralization of organic intermediates generated from the photodegradation of PBs. Trapping tests exhibited the major role of hydroxyl radicals in the degradation system, and the catalyst showed high stability under five repetitive runs. This study proposes an efficient treatment system that can be implemented on a wider scale utilizing the synthesized catalyst to degrade plastics efficiently before their release to water streams.

Keywords: Degradation mechanism; Mass loss; Microplastics; Optimum parameters; Photodegradation; Polyethylene bags; Reactive radicals.

MeSH terms

  • Catalysis
  • Photolysis
  • Plastics
  • Polyethylene*
  • Titanium
  • Water
  • Water Pollutants, Chemical* / analysis

Substances

  • Polyethylene
  • Water
  • Plastics
  • Water Pollutants, Chemical
  • Titanium