A long-term study on the effect of magnetite supplementation in continuous anaerobic digestion of dairy effluent - Magnetic separation and recycling of magnetite

Bioresour Technol. 2017 Oct:241:830-840. doi: 10.1016/j.biortech.2017.06.018. Epub 2017 Jun 14.

Abstract

Promotion of direct interspecies electron transfer (DIET) between exoelectrogenic bacteria and electron-utilizing methanogens has recently been discussed as a new method for enhanced biomethanation. This study evaluated the effect of magnetite-promoted DIET in continuous anaerobic digestion of dairy effluent and tested the magnetic separation and recycling of magnetite to avoid continuous magnetite addition. The applied magnetite recycling method effectively supported enhanced DIET activity and biomethanation performance over a long period (>250days) without adding extra magnetite. DIET via magnetite particles as electrical conduits was likely the main mechanism for the enhanced biomethanation. Magnetite formed complex aggregate structures with microbes, and magnetite recycling also helped retain more biomass in the process. Methanosaeta was likely the major methanogen group responsible for DIET-based methanogenesis, in association with Proteobacteria and Chloroflexi populations as syntrophic partners. The recycling approach proved robust and effective, highlighting the potential of magnetite recycling for high-rate biomethanation.

Keywords: Anaerobic digestion; Direct interspecies electron transfer; Magnetite recycling; Methanogenesis; Microbial community structure.

MeSH terms

  • Bacteria
  • Dairying*
  • Digestion
  • Electron Transport
  • Ferrosoferric Oxide*
  • Methane*
  • Waste Disposal, Fluid*

Substances

  • Methane
  • Ferrosoferric Oxide