Stick or leave - Pushing methanogens to biofilm formation for ex situ biomethanation

Bioresour Technol. 2019 Nov:291:121784. doi: 10.1016/j.biortech.2019.121784. Epub 2019 Jul 15.

Abstract

Biomethanation exploits the ability of methanogenic archaea to convert CO2 and renewable H2 from electrolysis to biomethane. Biofilm reactors are promising for biomethanation scale-up due to high CH4 productivity and low energy input for H2 gas-liquid mass transfer. Effects of operational conditions on biofilm dynamics remain largely uncharacterized but may increase reactor potentials further. This study investigated the effect of hydraulic retention time (HRT) on methanogenic biofilm activity and composition. Commercial carriers floating in liquid were exposed to H2/CO2 for 87 days with the liquid phase being subject to either 18 hours, 10 days, or 20 days HRT. Methanogenic biofilms were dominated by hydrogenotrophic methanogens, but biofilm CH4 productivity was enhanced at 18 hours HRT due to wash-out of competing planktonic species, which otherwise hampered proliferation of biofilm biomass at long HRT. It is suggested that high-rate biofilm reactors can increase methanogenic biofilm activity by minimizing the liquid's H2 exposure.

Keywords: Ex situ biomethanation; H(2); Homoacetogenesis; Hydraulic retention time; Methanogenic biofilm.

MeSH terms

  • Biofilms*
  • Biomass
  • Bioreactors
  • Euryarchaeota / physiology*
  • Methane / metabolism*
  • Plankton / metabolism

Substances

  • Methane