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Insoluble Fe-humic acid complex as a solid-phase electron mediator for microbial reductive dechlorination

  • Chunfang Zhang
  • , Dongdong Zhang
  • , Zhiling Li
  • , Tetsuji Akatsuka
  • , Suyin Yang
  • , Daisuke Suzuki
  • , Arata Katayama*
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

We report that the insoluble Fe-HA complex, which was synthesized with both commercial Aldrich humic acid (HA) and natural HA, functions as a solid-phase electron mediator (EM) for the anaerobic microbial dechlorination of pentachlorophenol. Spectroscopic characterizations and sequential Fe extraction demonstrated that the Fe-HA complex was predominated with Na4P 2O7-labile Fe (represented as the organically bound Fe fraction) and poorly ordered Fe fraction (the fraction left in the residue after the sequential extraction), which were associated with different possible binding processes with carboxylate and phenolic groups. The change in the electron-mediating activity caused by Fe extraction indicated that the electron-mediating function of the Fe-HA complex is attributable to the Na 4P2O7-labile Fe fraction. The Fe-HA complex also accelerated the microbial reduction of Fe(III) oxide, which suggested the presence of multiple electron-mediating functions in the complex. The electron shuttle assay showed that the Fe-HA complex had an electron-accepting capacity of 0.82 mequiv g-1 dry Fe-HA complex. The presence of redox-active moieties in the Fe-HA complex was verified by cyclic voltammetry analysis of the sample after electrical reduction, with a redox potential estimated at 0.02 V (vs a standard hydrogen electrode).

Original languageEnglish
Pages (from-to)6318-6325
Number of pages8
JournalEnvironmental Science and Technology
Volume48
Issue number11
DOIs
StatePublished - 3 Jun 2014

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