AI Article Synopsis

  • Microplastic pollution is a major environmental concern that threatens aquatic ecosystems and human health, prompting the development of new strategies for degradation and hydrogen production.
  • The study introduces a novel tandem catalytic process (MPD-HER) that efficiently degrades ultrahigh-molecular-weight-polyethylene into valuable organic compounds while producing hydrogen, utilizing single-atom iron catalysts supported by porous carbon nitride.
  • This innovative process demonstrates exceptional efficiency, selectivity, and stability across multiple cycles, and shows promise for degrading various plastics while addressing both pollution and the hydrogen economy, supporting global sustainability efforts.

Article Abstract

Microplastic pollution, an emerging environmental issue, poses significant threats to aquatic ecosystems and human health. In tackling microplastic pollution and advancing green hydrogen production, this study reveals a tandem catalytic microplastic degradation-hydrogen evolution reaction (MPD-HER) process using hierarchical porous carbon nitride-supported single-atom iron catalysts (FeSA-hCN). Through hydrothermal-assisted Fenton-like reactions, we accomplish near-total ultrahigh-molecular-weight-polyethylene degradation into C-C organics with 64% selectivity of carboxylic acid under neutral pH, a leap beyond current capabilities in efficiency, selectivity, eco-friendliness, and stability over six cycles. The system demonstrates versatility by degrading various daily-use plastics across different aquatic settings. The mixture of FeSA-hCN and plastic degradation products further achieves a hydrogen evolution of 42 μmol h under illumination, outperforming most existing plastic photoreforming methods. This tandem MPD-HER process not only provides a scalable and economically feasible strategy to combat plastic pollution but also contributes to the hydrogen economy, with far-reaching implications for global sustainability initiatives.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11464750PMC
http://dx.doi.org/10.1038/s41467-024-53055-1DOI Listing

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