Bioelectrochemically altering microbial ecology in upflow anaerobic sludge blanket to enhance methanogenesis fed with high-sulfate methanolic wastewater

Yijing Gao, Shiliang Heng, Jiayi Wang, Zhaobin Liu, Yisheng Liu, Bin Chen, Yule Han, Wanjiang Li, Xueqin Lu, Guangyin Zhen

Research output: Contribution to journalArticlepeer-review

5 Scopus citations

Abstract

A bioelectrochemical upflow anaerobic sludge blanket (BE-UASB) was constructed and compared with the traditional UASB to investigate the role of bioelectrocatalysis in modulating methanogenesis and sulfidogensis involved within anaerobic treatment of high-sulfate methanolic wastewater (COD/SO42− ratio ≤ 2). Methane production rate for BE-UASB was 1.4 times higher than that of the single UASB, while SO42− removal stabilized at 16.7%. Bioelectrocatalysis selectively enriched key functional anaerobes and stimulated the secretion of extracellular polymeric substances, especially humic acids favoring electron transfer, thereby accelerating the electroactive biofilms development of electrodes. Methanomethylovorans was the dominant genus (35%) to directly convert methanol to CH4. Methanobacterium as CO2 electroreduction methane-producing archaea appeared only on electrodes. Acetobacterium exhibited anode-dependence, which provided acetate for sulfate-reducing bacteria (norank Syntrophobacteraceae and Desulfomicrobium) through synergistic coexistence. This study confirmed that BE-UASB regulated the microbial ecology to achieve efficient removal and energy recovery of high-sulfate methanolic wastewater.

Original languageEnglish
Article number131026
JournalBioresource Technology
Volume406
DOIs
StatePublished - Aug 2024

Keywords

  • Bioelectrocatalysis
  • Biofilm activity
  • Extracellular polymeric substances
  • Low COD/SO ratio
  • Microbial community structure

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