4.7 Article

Enhanced Bio-Electro-Fenton degradation of phenolic compounds based on a novel Fe-Mn/Graphite felt composite cathode

Journal

CHEMOSPHERE
Volume 234, Issue -, Pages 260-268

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.chemosphere.2019.06.054

Keywords

Bio-electro-fenton; Fe-Mn/GF composite cathode; Hydroxyl radicals; Phenolic compounds; Degradation pathway

Funding

  1. Jiangsu Synergetic Innovation Center for Advanced Bio-Manufacture
  2. Key Research and Development Technology of Ningxia Hui Autonomous Region (special project for foreign science and technology cooperation) [2019BFH02008]
  3. National Natural Science Foundation of China [21777069]
  4. Qing Lan Project of Jiangsu Universities
  5. Six Talent Peaks Project in Jiangsu Province
  6. Priority Academic Program Development of Jiangsu Higher Education Institutions (PAPD)
  7. Jiangsu National Synergetic Innovation Centre for Advanced Materials (SICAM)
  8. Key Laboratory of Environmental and Applied Microbiology, Chengdu Institute of Biology, Chinese Academy of Sciences

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Phenolic compounds are problematic byproducts generated from lignocellulose pretreatment. In this study, the feasibility degradation of syringic acid (SA), vanillic acid (VA), and 4-hydroxybenzoic acid (HBA) by Bio-Electro-Fenton (BEF) system with a novel Fe-Mn/graphite felt (Fe-Mn/GF) composite cathode were investigated. The nano-scale Fe-Mn multivalent composite catalyst with core shell structure distributed more evenly on GF surface to form a catalyst layer with higher oxygen reduction reaction performance. Accordingly, the maximum power density generated with Fe-Mn/GF cathode was 48.1% and 238.9% higher than Fe/GF and GF respectively, which further enhanced the in situ generation of H2O2 due to the superiority of nano-scale core shell structure and synergistic effect of Fe and Mn species. The degradation efficiency of the three phenolic compounds in the BEF system could reached 100% after optimization of influencing parameters. Furthermore, a possible SA degradation pathway by BEF process in the present system was proposed based on the detected intermediates. These results demonstrated an efficient approach for the degradation of phenolic compounds derived from lignocellulose hydrolysates. (C) 2019 Elsevier Ltd. All rights reserved.

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