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February 21, 2026Environmental Science & Technology0 citations

Natural Polyphenol-Promoted Degradation of Emerging Contaminants during Copper Sulfide Mineral Oxygenation: The Synergism of Surface-Bound Radicals and Singlet Oxygen

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YLYangju LiHQHexian QinDWDapeng Wu

Key Points

  • This research investigates the role of natural polyphenols in enhancing the degradation of contaminants by copper sulfide minerals.
  • In vitro experiments using protocatechuic acid to study its effects on contaminant degradation during CuS-x oxygenation.
  • Analysis of surface-bound hydroxyl generation via a three-electron O2 activation pathway.
  • Theoretical calculations to assess the adsorption and activation of O2 on copper sulfide surfaces.
  • Protocatechuic acid significantly enhances the degradation of target contaminants.
  • Contributions of singlet oxygen and surface-bound hydroxyl to degradation were 31.8% and 60.2%, respectively.
  • Oxidation products and S vacancies also accelerate the copper redox cycle, facilitating O2 activation.

Abstract

Natural polyphenols are prevalent in aquatic environments, playing a critical role in the aerobic degradation of contaminants by redox-active minerals. Nevertheless, little is known about how the natural polyphenols influence the environmental behavior of copper sulfide minerals and reactive oxygen species (ROS) generation. In this work, the role of natural polyphenols in the degradation of waterborne emerging contaminants during CuS- x (a composite of Cu 2 S and CuS) oxygenation was investigated, where protocatechuic acid (PCA) was selected as a representative natural polyphenol. It was demonstrated that PCA could significantly enhance the degradation of target contaminant by substantially boosting surface-bound • OH ( • OH bound ) generation via a three-electron O 2 activation pathway. Experimental analysis and theoretical calculations unveiled that PCA favored the adsorption and activation of O 2 on the CuS- x surface, thus facilitating the formation of O 2 •– (an important precursor of both • OH and singlet oxygen ( 1 O 2 )). The contributions of 1 O 2 and • OH bound to contaminant degradation in the CuS- x /PCA system were 31.8% and 60.2%, respectively. Notably, besides PCA itself, the oxidation products (i.e., ortho-quinones and semiquinone radicals) and S vacancies also played a crucial role in accelerating the Cu redox cycle to activate O 2 . These findings provide valuable insights for advancing sulfide mineral-based green remediation technologies.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69990de85b97ab4c14ac27ddhttps://doi.org/10.1021/acs.est.5c16502
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