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Activation of molecular oxygen by tenorite and ascorbic acid: Generation of high-valent copper species for organic compound oxidation

  • Na Chen
  • , Donghyun Lee
  • , Min Sik Kim
  • , Huan Shang
  • , Shiyu Cao
  • , Erwin Jongwoo Park
  • , Meiqi Li
  • , Lizhi Zhang
  • , Changha Lee*
  • *Corresponding author for this work
  • Seoul National University
  • Central China Normal University

Research output: Contribution to journalJournal articlepeer-review

Abstract

This study constructs a novel strategy for the activation of molecular oxygen over naturally abundant tenorite (CuO) complexed with ascorbic acid (AA). According to the results of ATR-FTIR characterization and DFT calculation, AA forms inner-sphere complexes with copper on the CuO surface ([tbnd]Cu(II)) in a monodentate mononuclear configuration, reduces [tbnd]Cu(II) to [tbnd]Cu(I), and complexes the latter species to efficiently activate molecular oxygen for the in situ production of H2O2 and subsequently generate reactive oxidants for the degradation of organic compounds. The multiple evidence of oxidant scavenging tests, EPR spectroscopy, molecular probe experiments, and XPS and XANES analyses collectively suggest that the dominant reactive oxidant is the surface-bound high-valent copper species ([tbnd]Cu(III)) rather than OH. Compared with OH, [tbnd]Cu(III) possesses the different oxidation behaviors for bisphenol A and benzoic acid and is less reactive toward alcohols and compounds with strongly electron-withdrawing groups and heterocyclic rings. The CuO/AA system exhibits stable performance that is only marginally affected by the water matrix and shows high durability in repetition tests. Thus, this work describes a promising strategy for the oxidation of organic contaminants via the activation of molecular oxygen and provides insights into the properties and identifications of the [tbnd]Cu(III) species.

Original languageEnglish
Article number129839
JournalJournal of Hazardous Materials
Volume440
DOIs
StatePublished - 2022.10.15

Keywords

  • Ascorbic acid
  • High-valent copper species
  • Organic contaminant
  • Oxygen activation
  • Tenorite

Quacquarelli Symonds(QS) Subject Topics

  • Environmental Sciences
  • Engineering - Petroleum

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